Document VJeqOEyNQO6KdVg958Gjqq6Xp
6) OECD 471-OPPTS 870.5100, Bacterial reverse mutation test (Ames test), 0623-2140
SANITIZED
DEC 0 9 2003
F"AL REPORT Primedica Redfield Test Article: Potassium Perfluorobutane Sulfonate SITEK Study NO. 0623-2140
July 12, 2001
7A.
.SITEIC R E S E A R CLHABORATORIES
15235 Shady Grove Road, Suite 303, Rockville, Maryland 20850 301/9264900 FAY 301/926-8891
Study Title
Evaluation of a Test Article in the Salmonella typhimurium/Escherichia coli Plate IncorporatiodPreincubation Mutation Assay in the Presence and Absence
of Induced Rat Liver S-9
Test Article I.D.
Potassium Perfluorobutane Sulfonate
Author
Kamala J. Pant, M.S.
Performing Laboratory
SITEK Research Laboratories 15235 Shady Grove Road, Suite 303
Rockville, Maryland 20850
Laboratory Project ID
SITEK Study NO. 0623-2140 Sponsor's Study No. 132-008
Study Initiation Date
August 1, 2000
Study Completion Date
July 13, 2001
Sponsor
Primedica Redfield 100 E. Boone Street Redfield, AR 72132
Page 1 of 92
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SITEK Study NO. 0623-2140
COMPLIANCE WITH GOOD LABORATORY PRACTICE STANDARDS
Study NO. 0623-2140
Sponsor's Test Article ID: Potassium Perfluorobutane Sulfonate
The study described in this report was conducted in compliance with the following Good Laboratory Practice standard:
United States Food and Drug Administration, Title 21 Code of Federal Regulations Part 58, Revised April 1, 1998.
Organisation for Economic Cooperation and Development, The OECD Principles of Good Laboratory Practice, Environment Monograph No. 45, Paris 1992,
except for the strength and stability of the test article dosing solutions and controls under experimental conditions, which were not determined by SITEK Research Laboratories. However, the dosing solutions were analyzed by Southern Research Institute, Birmingham, Alabama. The analysis was not done under GLP conditions.
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Signature
Kamala J. Pant, M.S. Study Director
7 -B ? Q \ Date
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SITEK Study NO. 0623-2140
QUALITY ASSURANCE UNIT'S STATEMENT
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Study NO. 0623-2140
Sponsor's Test Article I.D. : Potassium Perfluorobutane Sulfonate
The performance of this study was audited for adherence to the Good Laboratory Practice regulations for nonclinical laboratory studies by the Quality Assurance Unit of SITEK Research Laboratories. In this context, the facilities, equipment, personnel, methods, practices, controls, original data and reports have been inspected as per SITEK's Quality Assurance Unit's Standard Operating Procedures. The information contained within this report accurately reflects the raw data generated from this study.
Protocol Review Date:
08-02-00
The following phases were inspected for this study:
Inspection Date
Phases Inspected
Date Findings Reported to Study Director
Date Findings Reported to Management
9-25-00 10-04-00 10-04-00 07- 13-01
Confirmation of the Tester Strain Genotvpes
Workbook Audit Draft Report Audit
Final Report Audit
09-25-00 10-04-00 10-04-00 07-13-01
09-25-00 10-04-00 10-04-00
- 07-13-01
Signature
Paul E. k b y , Ph.D. Quality Assurance Unit
7-f-3-01
Date
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SITEK Study NO. 0623-2140
STUDY DIRECTOR'S SIGNATURE PAGE
This study was performed under the supervision of Kamala J. Pant, M.S., Study Director for Salmonella typhimurium and Escherichia coli Gene Mutation Assays, at SITEK Research Laboratories, 15235 Shady Grove Road, Suite 303, Rockville, Maryland 20850.
The Final Report for this study was written by the Study Director and released on July 13, 2001.
Signature
Kamala J. Pant, M.S. Study Director
& Pn.,*-k
Date 7- 1'3t01
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SITEK Study NO. 0623-2140
ABSTRACT
The test article, Potassium Perfluorobutane Sulfonate, was tested for its potential to cause mutations at the hstidine operon of Salmonella typhimurium strains TA98, TA100, TA1535 and TA1537, and at the tryptophan operon of Escherichia coli strain WP2uvrA. The test article, dissolved in DMSO, was tested for toxicity to strains TAlOO and WP2uvrA in a Range Finding Test (RFT) at test article concentrations ranging from 5.0-5000 pg/plate. The tester strains were exposed to the test article in the absence of exogenous activation and in the presence of induced rat liver S-9 plus cofactors. The toxicity was evaluated based on: 1) reversion frequency, 2) viability, and 3) integrity of the background lawn.
The first (definitive) Mutation Assay (B-1), using the plate incorporation method of treatment, was performed with the four Salmonella typhirnurium tester strains and with Escherichia coli strain WP2uvrA. Based on the results of the l2FT (A-1), the test article was tested at the following concentrations in the Mutation Assay:
50, 100, 500, 1000 and 5000 pglplate.
The second (confirmatory) Mutation Assay (B-2), using the preincubation method of
treatment, was performed to confirm the results of the definitive assay using the same test
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article concentrations with and without activation.
Both negative and positive controls fulfilled the requirements of the test.
The results of both Mutation Assays indicate that the test article did not induce any significant increase in the number of revertant colonies for any of the tester strains in the
presence or absence of induced rat liver S-9.
Under the conditions of this study, Potassium Perfluorobutane Sulfonate was negative
in the Salmonella typhimurium/Escherichia coli Plate IncorporatiodPreincubation Mutation Assay with and without metabolic activation.
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SITEK Study NO. 0623-2140
TABLE OF CONTENTS
COMPLIANCE WITH GOOD LABORATORY PRACTICE STANDARDS................................................ 2
QUALITY ASSURANCE UNIT'S STATEMENT............................................................................................. 3
STUDY DIRECTOR'S SIGNATURE PAGE..................................................................................................... 4
ABSTRACT ........................................................................................................................................................... 5
INTRODUCTION................................................................................................................................................. 8
MATERIALS....................................................................................................................................................... 10
TEST ARTICLE CONTROL SUBSTANCES INDICATOR CELLS CULTURE CONDITIONS S-9 METABOLIC ACTIVATION SYSTEM
EXPERIMENTAL PROCEDURES.................................................................................................................. 13
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DOCUMENTATION TEST SYSTEM IDENTIFICATION SOLUBILITY TEST PREPARATION OF TEST CULTURES PREPARATION OF S-9 METABOLIC ACTIVATION SYSTEM PREPARATION OF TEST ARTICLE DOSING SOLUTIONS RANGE FINDING TEST MUTATION ASSAYS
CRITERIA FOR A VALID ASSAY.................................................................................................................. 21
EVALUATION OF TEST RESULTS............................................................................................................... 22
ARCHIVES............................................................................................................... i.......................................... 23
RESULTS ............................................................................................................................................................ 24
SOLUBILITY TEST RANGE FINDING TEST (A-1) MUTATION ASSAYS DOSING SOLUTION ANALYSIS RESULTS
CONCLUSIONS ................................................................................................................................................. 26
REFERENCES.................................................................................................................................................... 27
APPENDIX I ....................................................................................................................................................... 28
DATA TABLES
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SITEK Study NO. 0623-2140
APPENDIX II...................................................................................................................................................... 35
DETAILED PLATE COUNTS AND BACKGROUND LAWN EVALUATION
APPENDIX 111.................................................................................................................................................... 48
STUDY PROTOCOL AND PROTOCOL AMENDMENTS
APPENDIX IV..................................................................................................................................................... 67
HISTORICAL POSITIVE AND SOLVENT CONTROL DATA
APPENDIX V ...................................................................................................................................................... 71
DOSING SOLUTION ANALYSIS
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SITEK Study NO. 0623-2140
INTRODUCTION
The purpose of this study was to evaluate the test article, Potassium Perfluorobutane Sulfonate, for its potential to cause mutations in the histidine operon of Salmonella typhimunum strains TA98, TA100, TA1535 and TA1537 and the tryptophan operon of Escherichia coli strain WP2uvrA. The Salmonella typhimurium/Escherichia coli Plate IncorporatiodPreincubation Mutation Assay has been used extensively and has been demonstrated to be effective in detecting mutations caused by compounds from a wide range of chemical classes.
The Ames Assay is the most widely used of all methods for determining the
mutagenicity of chemicals. Because the bacterial strains used in this assay lack the enzymes
necessary for metabolizing promutagens to ultimate mutagens, rat liver S-9 (induced with
either Aroclor 1254 or phenobarbital) was added as a substitute for mammalian metabolism.
This assay detects point mutations only and measures reverse mutation from acid auxotrophy
to prototrophy. In this method, bacterial strains were used which carry base substitution or
frame-shift mutations in operons coding for synthesis of specific amino acids. Therefore,
these mutants (unlike their wild-type counterparts) cannot synthesize all their required amino
acids from inorganic sources of nitrogen, being auxotrophic for the specific amino acid. This
assay determines whether the test article can reverse the effect of the pre-existing mutation by
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introducing a second mutation, either at the structural gene or at another site on the bacterial
chromosome. The following are the details of mutations in the different strains (4):
* TA98 was derived from TA1538 (pKM101 plasmid added). ** TAlOO was derived from TA1535 (pKM101 plasmid added).
rfa - Defective lipopolysaccharide coat. More permeable to chemicals. (Sensitive to crystal violet.)
uvrB - Reduced error-free repair of some types of DNA damage. (Sensitive to W light.) R Factor (pKh4lOl) - Increases sensitivity by enhancing error-prone DNA repair. (Ampicillin resistant if
piasmd present.) uvrA - Less DNA repair.
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SITEK Study NO. 0623-2140 This study was conducted by Kamala J. Pant, M.S., Sonia Srivastava, M.S., and Jieyu
Chen, M.D., from August 4,2000 to September 25, 2000, at SITEK Research Laboratories. The experimental procedures used to perform this study were essentially those of B. N. Ames, et al. (l),D. Maron and B. N. Ames (2), M. H. L. Green and W. J. Muriel (3), and S. Venitt and J. M. Parry (eds.) (4).
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SITEK Study NO. 0623-2140
MATERIALS
TEST ARTICLE
1. Name: 2. Batch/Lot No.: 3. CAS No.: 4. Physical Appearance: 5. Date Received: 6. Storage Conditions: 7. Purity Information: 8. Expiration Date:
Potassium Perfluorobutane Sulfonate C4F9S03-WLot 2 29420-49-3 White Powder June 8, 2000 and September 7, 2000 Room Temperature 100% Pure 04-06-01
CONTROL SUBSTANCES
Positive Controls
The positive control chemicals used for the tester strains in the presence and absence of exogenous metabolic activation are presented below:
!
Strain
s-9
Chemical
Concentration (wg/plate)
TA98
-
TA98
+
+ TA 100
-
TAlOO
TA1535 TA1535
+ TA1537
-
TA1537
+ WP2uvrA -
WP2uvrA
2-NF (2-Nitrofluorene)
5.0
2-AA (2-Aminoanthracene)
1.25
NaAz (Sodium Azide)
1.o
2-AA (2-Aminoanthracene)
1.25
NaAz (Sodium Azide)
1 .o
2-AA (2-Aminoanthracene)
1.25
9-AA (9-Aminoacridine)
50
2-AA (2-Aminoanthracene)
1.25
MMS (Methyl Methanesulfonate) 4000
2-AA (2-Aminoanthracene)
10
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SITEK Study NO. 0623-2140
The following is the information for each of the positive controls used in this assay:
Chemical Source
CAS No.
Lot No.
Storage Conditions
Expiration Date
2-AA
Sigma
613-13-8
39H0945
1-5C
09-1 6-04
9-AA
Aldrich
52417-22-8 08326"
1-5C
07- 15-01
2-NF
Aldrich
607-57-8
BY01703EV 1-5C
04-06-02
NaAz
Sigma
26628-22-8 110H0269 1-5C
04-06-02
MMS
Aldrich
66-27-3
08109BU
1-5C
08-11-04
All of the positive control substances, except NaAz and MMS (dissolved in sterile, distilled, deionized water), were dissolved in dimethyl sulfoxide (DMSO). The source, lot number and expiration date of the DMSO are given below:
Source: Mallinckrodt
Lot No. : 4948N44H11
Storage Conditions: Room Temperature
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CAS Number: 67-68-5
Expiration Date: April 2003
The source, batch number and expiration date of the sterile, distilled, deionized water are given below:
Source: SITEK Research Laboratories
Batch Nos.: 23, 24 and 25
Storage Conditions: Room Temperature
Expiration Dates: 12-20-00,
01-14-01 and 02-15-01 respectively.
Solvent Control
The stock solutions of the test article were prepared in DMSO. Therefore, DMSO was used as the solvent control. The source, lot number and expiration date of the DMSO are the same as stated above.
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SITEK Study NO. 0623-2140
INDICATOR CELLS
Source
The Salmonella typhimurium strains TA98, TA100, TA1535 and TA1537 were originally obtained from Dr. Bruce N. Ames, University of California, Berkeley. The Escherichia coli strain WP2uvrA was obtained from Ms. Judy Mayo of Pharmacia and Upjohn Co., Kalamazoo, Michigan.
CULTURE CONDITIONS
The cells were grown in Oxoid Nutrient Broth No. 2 in a shaker incubator rotating at approximately 120 rpm and maintained at a temperature of 37 f 1C. Stock cultures of the tester strains were cryopreserved at SITEK Research Laboratories. Scrapes from the cryopreserved stock were used to initiate the overnight cultures for the test.
S-9 METABOLIC ACTIVATION SYSTEM
For the activated portion of the Mutation Assays, the cells were exposed to the test article
in conjunction with an exogenous metabolic activation system consisting of Aroclor 1254 or
1
phenobarbital-induced rat liver S-9 in 0.15M KC1 plus cofactors (S-9 mix). The components
of the standard S-9 mix were 8 m M MgCI,, 33mM KCI, 5 m M glucose-6-phosphate, 4mM
NADP, l O O m M sodium phosphate buffer (pH 7.4), and 10% rat Iiver homogenate prepared
from Aroclor 1254 or phenobarbital-induced, Sprague-Dawley rats. The S-9 batches used in
this study were also evaluated for their ability to metabolically activate a promutagen in the
Salmonella typhimurium Plate Incorporation Mutation Assay (Ames Test) in tester strain
TAlOO using a single dose of 2-AA. The following is the information pertaining to the S-9
batches used in this study:
Source: Inducing Agent: S-9 Batch No. : Protein Content:
Storage Conditions: Expiration Date:
Molecular Toxicology, Inc. Aroclor 1254 1064, 1092 and 1120 39.9, 46.1, 45.8 mg/mL, respectively. I-7O"C
03-01-02, 04-10-02, 06-27-02 and 10-12-02, respectively.
SITEK Research, Labs. Phenobarbita1 101299 36.8 mg/mL
2 -70C
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SITEK Study NO. 0623-2140
EXPERIMENTAL PROCEDURES
DOCUMENTATION
The materials, experimental procedures used in the performance of the study, experimental results and methods used in the evaluation of the results were documented in the study workbook.
TEST SYSTEM IDENTIFICATION
Labeling Plates for the Mutation Assays
A sufficient number of Vogel-Bonner agar plates were removed from refrigerated storage and allowed to warm to room temperature. Each plate was then labeled with the following information: SITEK's test article number, experiment phase, presence or absence of rat liver S-9 mixture, dose level code, and strain code. The following strain and dose level codes were used:
Strain Codes:
1 = TA98 2 = TAlOO
3 = TA1535 4 = TA1537
5 = WP2uvrA
Dose Level Codes:
0 = Solvent for the Test Article 1 = 1st or highest Test Article dose level 2 = 2nd Test Article dose level 3 = 3rd Test Article dose level 4 = 4th Test Article dose level 5 = 5th Test Article dose level or lowest Test Article dose level for the
Mutation Assays
6 = 6th Test Article dose level 7 = 7th Test Article dose level or lowest Test Article dose level for the
Range Finding Test
In addition to the above, Mutation Assay viability plates that contained 1OX histidinebiotin or 1OX tryptophan were designated with the prefix "T".
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SITEK Study NO. 0623-2140
Labeling: Positive Control Plates
Vogel-Bonner agar plates were removed from refrigerated storage and allowed to warm to room temperature. Triplicate sets were labeled with the test article number, identity and dose of the particular positive control, experimental phase, strain code, and the presence or absence of rat exogenous metabolic activation.
Labeling: Tester Strain Titer Plates
Each tester strain titer plate was labeled with the following information: SITEK test article number, tester strain identity, and experimental phase and the prefix T.
LabelinP Tester Strain Characterization Plates
Histidine Requirement
A single histidine-biotin plate was divided into four zones by drawing horizontal lines on the bottom of the plate with a marking pen and labeling each zone with a different Salmonella tester strain. A biotin-only control plate was labeled in a similar manner.
>
rfa Mutation
Nutrient agar plates were labeled with the Salmonella tester strain identification and "CV" (crystal violet).
R-Factor
A single ampicillin agar plate was labeled in a similar manner as the histidine-biotin plate.
Tryptophan Requirement
A tryptophan plate and a Vogel-Bonner agar control plate were labeled with the code for strain WP2uvrA and used for confirmation of the tryptophan requirement.
SOLUBILITY TEST
Since Sponsor had not provided the information regarding a preferred solvent to be used, a solubility test was performed with water and DMSO. Two 30 mg samples were weighed and each solvent was added in 0.1 mL increments until the test article dissolved or until 5.0 mL had been added.
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SITEK Study NO. 0623-2140
PREPARATION OF TEST CULTURES
The methods used for the cryopreservation and cultivation of the tester strains are modifications of the procedures used by B. N. Ames, et al. (1) and D. Maron and B. N. Ames (2).
Inoculation Procedures
Frozen ampules of strains TA98, TA100, TA1535, TA1537 and WP2uvrA for the Mutation Assays were removed from liquid nitrogen and placed into crushed dry ice to prevent thawing. Scrapes were made using the tip of a sterile pipet, and these scrapes were transferred to a shaker flask containing approximately 50 mL of sterile Oxoid Nutrient Broth No. 2. The flasks were placed in a shaker incubator, and a timer was set to start the unit at a time which allowed the strains to incubate at approximately 120 rpm and 37 1C for a period of 8-12 hours for the Salmonella strains and 4-6 hours for the E. coli strain before being harvested.
Harvestinp Overnight Cultures
Before starting the experiment, the cultures were sampled and their Percent Transmittance
)
(%T) was determined using a spectrophotometer set to a wavelength of 650 nm.
When the desired cell density of 5x108 to lx109 cells/ml (represented by a % T of between 25% and lo%,Optical Density of 0.6-1.0) was achieved, the cultures were placed on wet ice or kept at 1-5C until needed.
PREPARATION OF S-9 METABOLIC ACTIVATION SYSTEM
The S-9 cofactor mix was prepared as follows: For each mL of S-9 cofactor mix required,
0.335 mL of sterile, deionized, distilled water was combined with 0.5 mL of 0.2M sodium phosphate buffer (pH 7.4), 0.04 mL of a 0.1M NADP solution, 5.0 pL of 1M glucose-6phosphate, and 0.02 mL of a 0.4M MgCIJ1.65M KC1 salt solution. This mixture was maintained on ice until just prior to use, whereupon 0.10 mL of S-9 in 0.15N KC1 was added to the mixture.
PREPARATION OF TEST ARTICLE DOSING SOLUTIONS
The test article was weighed in glass tubes and solubilized in DMSO prior to its use in the experiment. Further serial dilutions were also prepared in DMSO.
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SITEK Study NO. 0623-2140
All of the test article and control substance treatments were done under UV-filtered lights to avoid possible problems of photoinactivation. Stability of the test article dosing solutions under experimental conditions was not determined by SITEK Research Laboratories. However, 2.0 mL samples from the Mutation Assays were saved frozen and shipped on dry ice to the Sponsor for analysis.
RANGE FINDING TEST
In order to determine the toxicity and to select the appropriate test article concentrations for the Mutation Assays, a Range Finding Test (A-1) was performed using strains TAlOO and WP2uvrA. Seven doses of the test article, ranging from 5.0-5000 pg/plate, were evaluated with and without induced rat liver S-9, using one plate per dose.
Spontaneous Reversion Frequency
Treatment was performed by adding either 500 pL of sterile, deionized, distilled water or
500 pL of S-9 cofactor mix to tubes containing 2.0 mL of top agar supplemented with 1X
histidine-biotin or 1X tryptophan solution. Immediately thereafter, 100 p L of TAlOO or
WP2uvrA was added, followed by 50 pL of the appropriate test article dose or solvent. The
1
highest concentration of 5000 pg/plate had a slight precipitate in the treatment tube. Each
tube was vortexed for 2-3 seconds, and the contents were evenly distributed over a Vogel-
Bonner bottom agar plate. Each plate was placed on a level surface until the top agar
solidified. The plates were inverted and incubated at 37 &- 1C for approximately 70 hours.
Viable Count Determination
Treatment and incubation were performed as described in the preceding paragraphs,
except that approximately 250-500 cells of TAlOO or WP2uvrA were added to top agar supplemented with 1OX histidine-biotin or 1OX tryptophan solution.
After the incubation period was completed, the plates, starting with the highest test article concentration, were observed for the presence of precipitate. Plates having no interfering precipitate were counted using an automatic colony counter (ARTEK Counter, Model 880). Plates with precipitate that interfered with automatic counting were counted by hand. Three counts were taken by rotating the plate on the counter stage and the median count was entered into a validated, Lotus 123 (version 3.4) spreadsheet program (2140A.WK3 for the Range Finding Test).
The background lawn was also evaluated. The following notations were used for the precipitate and background lawn evaluation:
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SITEK Study NO. 0623-2140
Chemical Precipitate: NP = No precipitate present.
SP = Slight precipitate - Noticeable compound on the plate; however, no influence
on automated plate counting. MP = Moderate precipitate - Marked precipitate requiring hand counting for colony
enumeration. HP = Heavy precipitate - Large'amount of compound on the plate rendering hand
counting difficult. Background Lawn Evaluation:
Normal, healthy microcolony lawn. A noticeable thinning of the microcolony lawn compared to that of the solvent control plates. Marked thinning of the microcolony lawn and an increase in the size of the microcolonies compared to the solvent control plates. Extreme thinning of the microcolony lawn and a large increase in the size of the microcolonies compared to the solvent control plates. Absence of any microcolony bacterial lawn. Obscured by precipitate. Determination of Relative Cloning Efficiencv The corrected viability counts from each dose with and without activation in Salmonella strain TAlOO and in Escherichia coli strain WP2uvrA were compared with the respective solvent control viability counts. The ratio was converted into a percentage, and the data were included in the Range Finding Test results.
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SITEK Study NO. 0623-2140
MUTATION ASSAYS
Definitive Mutation Assav (B-1)
Doses for the definitive Mutation Assay (B-1) were selected based on the results of the Range Finding Test (A-1). The definitive Mutation Assay was performed with the four Salmonella typhimurium tester strains (TA98, TA100, TAL535 and TA1537) and Escherichia coli strain WP2uvrA using the plate incorporation method of treatment. The test article was tested with the following concentrations in the Mutation Assay:
50, 100, 500, 1000 and 5000 pg/plate.
Treatment was performed by adding either 500 pL of deionized, distilled water or
500 pL of rat S-9 cofactor mix to tubes containing 2.0 mL of top agar supplemented with 1X
histidine-biotin or 1X tryptophan solution. Immediately thereafter, 100 pL of strains TA98,
TA100, TA1535, TA1537 or WP2uvrA were added, followed by 100 pL of the appropriate
test article dose or solvent. The positive controls were treated with 100 pL of the appropriate
stock solutions. Each tube was vortexed for 2-3 seconds, and the contents were evenly
distributed over a Vogel-Bonner bottom agar plate. Each plate was placed on a level surface
\
until the top agar solidified. The plates then were inverted and incubated at 37 f 1C for
approximately 70.5 hours.
Tester Strain Titer Determination
Each tester strain was diluted to determine the approximate number of viable cells
delivered to the assay plates. Therefore, approximately 250-500 cells were added to top agar supplemented with 1OX histidine-biotin or 1OX tryptophan solution. .,Each tube was vortexed for 2-3 seconds, and the contents were evenly distributed on bottom agar plates. The plates
were incubated at 37 k 1C for approximately 68 hours.
Tester Strain Characterization
All of the Salmonella typhimurium strains used in the assay were confirmed for the histidine requirement and the rfa mutation. In addition, strains TA98 and TAlOO were tested for the presence of the pKMlOl plasmid. Escherichia coli strain WP2uvrA was confirmed for the tryptophan requirement.
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SITEK Study NO. 0623-2140
Histidine or Trvptophan Requirement
A streak of each tester strain was made by dipping a flamed wire loop into the appropriate undiluted tester strain suspension and drawing it across the surface in the appropriate region of a labeled histidine-biotin or tryptophan plate, as well as control plates. The plates were incubated at 37 1C for approximately 20 hours.
rfa Mutation
For each of the Salmonella tester strains, a 100 pL aliquot of the undiluted culture was added to a tube containing 2.0 mL of 1X histidine-biotin solution top agar. Each tube was vortexed for 2-3 seconds, and the contents were poured onto an appropriately labeled nutrient agar plate. After allowing the plate to solidify, a sterile disc was aseptically placed in the center of the agar overlay. Ten pL of a 1.0 mg/mL crystal violet solution was then added to
the disc. The plates were incubated at 37 k 1C for approximately 20 hours.
R-Factor Plasmid
A streak of each of the Salmonella tester strains was made by dipping a flamed wire loop into the appropriate suspension and drawing it across the surface in the appropriate region of an ampicillin plate. The plates were incubated at 37 k 1C for approximately 20 hours.
Evaluation of Assay Results
After the incubation period was completed, the plates, starting with the highest test article concentration, were observed for the presence of precipitate. Plates having no interfering
precipitate were counted using an automatic colony counter (ARTEK Counter, Model 880).
Plates with precipitate that interfered with automatic counting were counted by hand. Three counts were taken by rotating the plate on the counter stage and the median count was entered into a validated, Lotus 123 (version 3.4) spreadsheet program (2140B.WK3 or 2150B.WK3 for the definitive and the confirmatory Mutation Assays, respectively).
The background lawn was also evaluated. Same notations as in the Range Finding Test were used to evaluate the precipitate and background lawn.
Evaluation of Tester Strain Characterization
The requirement for histidine or tryptophan was demonstrated by the growth of the tester strains on plates supplemented with histidine or tryptophan and the lack of growth on the control plates.
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SITEK Study NO. 0623-2140
The presence of the rfa mutation was evaluated by measuring the zone of inhibition around the crystal violet disc. A zone about 14 to -15 mm. in diameter was evidence of appropriate inhibition.
The presence of the pKMlOl plasmid was demonstrated by the growth of strains TA98 and TAlOO and the lack of growth of strains TA1535 and TA1537 streaked on ampicillin plates.
Tabulation of Colony Counts
The colony counts provided by the automatic colony counter were raw counts and were not corrected to reflect actual counts. Correction of the counts was performed by computer. The correction factor was determined by comparing a wide range of manual and automatic counts, as described in SITEK's SOP No. 21.0. The relationship was linear, and the counts were corrected by using the following formula:
Corrected Count = Raw Counts (1.0571607) + 3.09496
Confirmatory Mutation Assay (B-2)
I
To c o n f m the results of the definitive assay (B-1), a second (confirmatory) Mutation Assay (B-2) was performed with and without activation using the same test article concentrations. All test article concentrations, including the controls, were tested in triplicate. The preincubation method of treatment was used.
For the confirmatory assay, 500 pL of deionized, distilled water or S-9 mix was dispensed into a series of labeled culture tubes, and treatment was performed by adding 100 pL of tester strain and 100 pL of test article or the solvent. The positive control cultures were treated with 100 pL of the appropriate stock solutions. The tubes were vortexed gently and preincubated at 37 & 1C for 20 minutes. The tubes were shaken at a moderate speed during the preincubation. 2.0 mL of top agar containing 1X histidine-biotin or 1X tryptophan was added to each culture tube after the preincubation period. The contents of each tube were mixed by vortexing, poured onto a bottom agar plate, and evenly distributed by gently tilting and rotating the plates. All of the plates were placed on a level surface until solidified. After all treatments had been performed, the plates were inverted and incubated at 37 & 1C for approximately 68 hours. Remainder of the experiment was performed in the similar manner as the .definitive Mutation Assay.
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SITEK Study NO. 0623-2140
CRITERIA FOR A VALID ASSAY
The following criteria were used as guidelines in evaluating the acceptability of the Mutation Assay. Since it is impossible to formulate criteria that would apply to every configuration of data generated by the assay, the Study Director was responsible for the ultimate decision regarding the acceptability of the results.
Solvent Control Cultures
The mean reversion frequency of the test article solvent control plates for each tester strain should have fallen within the following ranges:
TA98 TAlOO TA1535 TA1537
20 & 15 100 & 70
20 k 15
15 f 12
WP2uvrA
15 -t 10
Positive Controls
The results for the positive control cultures were considered acceptable if the treated strains had a mean reversion frequency that was three times or more greater than the mean reversion frequency of the solvent control plates.
Tester Strain Characterization
All of the Salmonella typhimurium strains were confirmed positive for histidine dependence. Escherichia coli strain WP2uvrA was confirmed positive for tryptophan dependence.
All of the Salmonella typhimurium strains were confirmed positive for the rfa mutation as evidenced by sensitivity to crystal violet.
The R-factor strains, TA98 and TA100, were confirmed positive for the pKMlOl plasmid as evidenced by ampicillin resistance.
The titer of the stock cultures for each strain indicated that the stock cultures contained approximately between 5 . 0 ~ 1 0an~d 1.0x109bacteria per mL.
21
~~~
SITEK Study NO. 0623-2140
EVALUATION OF TEST RESULTS
The following criteria were used as guidelines in evaluating the results of the Mutation Assay for a negative, positive or equivocal response. Since it is impossible to write criteria that would apply to every configuration of data generated by the assay, the Study Director was responsible for the ultimate decision concerning the results.
Criteria for a Negative Response
A response was considered to be negative if all of the strains treated with the test article had mean reversion frequencies that were less than twice that of the mean reversion
frequencies of the corresponding solvent control plates in TA98 and TAlOO and less than three times in TA153.5, TA1537 and WP2uvrA, and there was no evidence.of a dose-dependent
response.
Criteria for a Positive Response
A response was considered to be positive if either strain TA98 or TAlOO exhibited a
mean reversion frequency that was at least double the mean reversion frequency of the
corresponding solvent control in at least one dose, or if either strain TA1535, TA1537 or
)
WP2uvrA exhibited a three-fold increase in the mean reversion frequency compared to the
solvent control in at least one dose. In addition, the response must have been dose dependent
or increasing concentrations of the test article must have showed increasing mean reversion
frequencies. In evaluating the results, consideration was given to the degree of toxicity
exhibited by the dose causing the two-fold/three-fold or greater increase in reversion
frequency and the magnitude of the increase in reversion frequency.
Criteria for an Eauivocal Response
A response was considered equivocal if it did not fblfill the criteria of either a negative or a positive response and/or the Study Director did not consider the response to be either positive or negative.
22
SITEK Study NO. 0623-2140 ARCHIVES All of the raw data, documentation, protocol, protocol amendments/deviations, and final report along with an electronic file containing the data tables and final report of the study, will be maintained at SITEK Research Laboratories' Archives at 15235 Shady Grove Road, Suite 303, Rockville, Maryland 20850.
i
4
23
SITEK Study NO. 0623-2140
RESULTS
SOLUBILITY TEST The test article was tested for solubility in water and DMSO. Two 30 mg samples
were weighed and tested for their solubility in water and DMSO. The test article was not soluble in up to 0.5 mL of water, however, 0.1 mL of DMSO was enough to solubilize a 30 mg sample. Thus, the maximum solubility of test article in DMSO was 300 mg/mL. Based on the results of the solubility test, DMSO was used as the solvent for the test article. RANGE FINDING TEST (A-1)
Summaries of the results of the Range Finding Test are presented in Tables 1 and 2 and included in Appendix I. The individual plate counts and background lawn evaluation are presented in Appendix 11. TAlOO With and Without Activation:
There were no signs of toxicity related with the background lawn or the number of revertants. The Relative Cloning Efficiencies (RCEs) among the test article concentrations of 5.0 to 5000 @plate ranged from 94% to 78% in the non-activated portion and all concentrations were greater than 100% in the activated portion. WP2uvrA With and Without Activation:
There were essentially no signs of toxicity related to the test article treatment. The RCEs for the test article concentrations of 5.0 to 5000 pg/plate ranged from 108% to 94% without activation and from 106%to 94% with activation. MUTATION ASSAYS Definitive Mutation Assav 03-1)
Summaries of the results of the definitive Mutation Assay are presented in Tables 3-4 included in Appendix I. The individual plate counts and background lawn evaluation are presented in Appendix 11.
24
-
SITEK Study NO. 0623-2140
The definitive Mutation Assay, using the plate incorporation method of treatment, was performed with the four Salmonella tester strains (TA98, TA100, TA1535, TA1537) and with E. coli strain WP2uvrA. Based on the results of the Range Finding Test, the following concentrations were tested in the Mutation Assay:
50, 100, 500, 1000 and 5000 pg/plate.
All the test article concentrations were nontoxic.
In the definitive Mutation Assay (B-1) with and without activation, all the tester stains treated with test article exhibited a mean reversion frequency that was similar to or less than double the corresponding solvent control, and there was no dose-related response.
Both the negative and positive controls fulfilled the requirements of the test.
Confirmatory Mutation Assay CB-2)
Summaries of the results of the confirmatory Mutation (B-2) Assay are presented in Tables 5-6 included in Appendix I. The individual plate counts and background lawn evaluation are presented in Appendix 11.
I
The confirmatory Mutation Assay (B-2) was performed with the same test article concentrations as the definitive Mutation Assay (B-1) with and without activation, but using the preincubation method of treatment.
In the confirmatory Mutation Assay (B-2), as in the definitive Mutation Assay with and without activation, all of the tester strains treated with the test article concentrations exhibited a mean reversion frequency that was similar to or less than double the corresponding solvent control. There was no dose-related response.
The test article in both Mutation Assays produced a negative response in the presence and absence of S-9 metabolic activation.
Both the positive and negative controls fulfilled the requirements of the test. All of the criteria for a valid assay were met.
DOSING SOLUTION ANALYSIS RESULTS
The analysis results are presented in Appendix V. All of the test article concentrations from the definitive (B-1) and confirmatory (B-2) Mutation Assays were within 5 % of the targeted values.
I
25
~~~~
~
SITEK Study NO. 0623-2140
CONCLUSIONS
The test article, Potassium Perfluorobutane Sulfonate, was tested in the Salmonella typhimurium/ Escherichia coli Plate IncorporatiodPreincubation Mutation Assay in the presence and absence of induced rat liver S-9.
The definitive Mutation Assay (B-1), using the plate incorporation method, was performed with four Salmonella tjphimurium tester strains, TA98, TA100, TA1535 and TA1537, and Escherichia coli strain WP2uvrA. Since the results of the Mutation Assay were negative, a second (confmatory) Mutation Assay (B-2) was performed to confirm the results using the preincubation method of treatment.
The results of the Mutation Assays indicated that the test article did not induce any significant increase in the number of revertant colonies for any of the tester strains in the presence or absence of induced rat liver S-9. The positive and negative controls fulfilled the requirements of the test.
Under the conditions of this study, Potassium Perfluorobutane Sulfonate was negative in
the Salmonella typhimurium/Escherichia coli Plate IncorporatiodPreincubation Mutation
\
Assay.
26
SITEK Study NO. 0623-2140
REFERENCES 1. Ames, B. N., J. McCann and E. Yamasaki. Methods for detecting carcinogens and
mutagens with the Salmonellalmammalian-microsome mutagenicity test. Mut. Res., - 31:347-367, 1975. 2. Maron, D., and B. N. Ames. Revised methods for the Salmonella mutagenicity test. Mut. Res., m:173-215, 1983. 3. Green, M. H. L., and W. J. Muriel. Mutagen testing using trp+ reversion in Escherichia coli. In: B. J. Kilbey, et al. (eds.), Handbook of Mutagenicity Test Procedures, pp. 65-94, Elsevier North Holland Biomedical Press, Amsterdam, 1977.
4. Venitt, S., and J. M. Parry (eds.). Mutagenicity Testing: A Practical Approach. IRL
Press, Oxford, England and Washington, D.C., 1984.
27
SITEK Study NO. 0623-2140 APPENDIX I DATA TABLES
28
-I 1 SITEK RESEARCHLABORATORIES
I -1r t TABLE 1
SITEK Study NO. 0623-2140
SALMONELLA TYPHIMURlUM PLATE INCORPORATlON MUTATION ASSAY RANGE FINDING TEST RESULTS
WITHOUT ACTIVATION
Back-
Test No. of
ground
Article Rever-Chem. Lawn
Conc. tantsl PPT. Evalu-
pg/plate Plate Eval.* ation**
5.0
10
50 100 500 1000 5000
59 NP NL 62 NP NL 52 NP NL 72 NP NL 55 NP NL 71 NP NL 58 NP NL
No. of RelaViable tive Colo- Cloning nies/ EffiPlate ciency
WE) 212 78% 244 90% 240 89% 211 78% 254 94% 256 94% 249 92%
Test Article Conc. pg/plate
5.0
10 50
100
500 1000 5000
WITH S-9
No. of ReverChem. tants/ PPT. Plate Eval.*
69 NP 70 NP 84 NP 67 NP 59 NP 63 NP 62 NP
ACTIVATION Back- No. of ground Viable Lawn ColoEvalu- nies/ ation** Plate
NL
540
NL
574
NL
539
NL
545
NL
508
NL
523
NL
541
Relative
Cloning Efficiency (RCE)
115%
122% 115% 116% 108% 112% 115%
SOLV. CONT.
59 NP NL
271 100%
SOLV. CONT.
73 NP NL
469 100%
RCE =
No. of Colonies in Test Plates
x 100
No. of Colonies in Solvent Control Plates
Chemical Precipitate Evaluation NP = No precipitate SP = Slight precipitate; noticeable precipitate on the plate, but no
interference with automated plate counting MP = Moderate precipitate; marked precipitate necessitating hand
counting for colony enumeration HP = Heavy precipitate; large amount of precipitate rendering hand
counting difficult or impossible
** Background Lawn Evaluation
NL = Normal, healthy microcolony lawn SR = Noticeable thinning of the microcolony lawn compared to control MR = Marked thinning of the microcolony lawn and increase in size of
microcolonies compared to control ER = Extreme thinning of the microcolony lawn and large increase in
size of microcolonies compared to control AB = Absence of microcolonies OP = Obscured by precipitate
29
-
F -
SITEK Study NO. 0623-2140
TABLE 2
ESCHERICHIA COLI PLATE INCORPORATION MUTATION ASSAY RANGE FINDING TEST RESULTS
SPONSOR: EXPERIMENT NO.:
TEST ARTlC LE:
Primedica Redifield A-1 Potassium Perfluorobutane
SITEK STUDY NO.: SOLVENT: STRAIN:
0623-2140 DMSO WP2uvrA
WITH0 UT ACTIVATION
WITH S-9 ACTIVATION
Test No. of
ground
Article ReverChem. Lawn
Conc. tants/ PPT. Evalu-
pg/plate Plate Eval.* ation**
5.0
10
50
100 500 1000
5000
13 NP NL 13 NP NL 10 NP NL 10 NP NL 8 NP NL 15 NP NL 10 NP NL
Viable tive Colo- Cloning nies/ EffiPlate ciency
WE) 1016 107%
998 1000 887
105%
106% 94%
1018 1006 1000
108% 106% 106%
Test No. of
ground
Article ReverChem. Lawn
Conc. tank/ PPT. Evalu-
pg/plate Plate Eval.* ation**
5.0
10
50
100
500
1000
5000
18 NP NL 16 NP NL 13 NP NL 12 NP NL 12 NP NL 17 NP NL 22 NP NL
Viable tive Colo- Cloning nies/ EffiPlate ciency
WE)
1100 96% 1144 100% 1196 104% 1080 94% 1122 98% 1181 103% 1218 106%
SOLV. CONT.
17 NP NL
946 100%
SOLV. CONT.
20 NP NL
1149 100%
RCE =
No. of Colonies in Test Plates
x 100
No. of Colonies in Solvent Control Plates
* Chemical Precipitate Evaluation
NP = No precipitate
SP = Slight precipitate; noticeable precipitate on the plate, but no
interference with automated plate counting MP = Moderate precipitate; marked precipitate necessitating hand
counting for colony enumeration HP = Heavy precipitate; large amount of precipitate rendering hand
counting difficult or impossible
** Background Lawn Evaluation
NL = Normal, healthy microcolony lawn SR = Noticeable thinning of the microcolony lawn compared to control MR = Marked thinning of the microcolony lawn and increase in size of
microcolonies compared to control ER = Extreme thinning of the microcolony lawn and large increase in
size of microcolonies compared to control AB = Absence of microcolonies OP = Obscured by precipitate
30
SITEK Study NO.0623-2140
TABLE 3 SALMONELLA TYPHIMURIUMIESCHERICHIA COLI PLATE INCORPORATION MUTATION ASSAY
MUTATION ASSAY RESULTS - WITHOUT ACTIVATION
S. typhimurium
STRAIN: TA98
REVERTANTS
DATE PLATED:
STD. DEV.
D8/15/00
LAWN
CELLS SEEDED:
1.692 x 10' PRECIPITATE
STRAIN: TA100
REVERTANTS
DATE PLATED:
STD. DEV.
08ll 5/00
LAWN
CELLS SEEDED:
0.964x 10' PRECIPITATE
STRAIN: TAl535
REVERTANTS
DATE PLATED:
STD. D EV.
0811 5/00
1 LAWN
1.798 x 10'1 PRECIPITATE
STRAIN: TA1537
I REVERTANTS
DATE PLATED:
STD. DEV.
..
LAWN
CELLS SEEDED:
1.128x 10' PRECIPITATE
E. coli
STRAIN: WP2uvrA DATE PLATED: 0811 5/00
CELLS SEEDED: 2.334x 10'
REVERTANTS STD. DEV.
LAWN
PRECIPITATE
Positive Control
740 28
Average No. of Revertants Per Plate
Solvent
Concentration per plate
Control
50 100 500 1000
30
38
37
37
34
'4
6
6
4
11
5000 30 12
NL
NL
NL NL NL
NL NL
NP 484
33
NP
NP NP
NP
NP
NP
67
83
78
80
78
74
6
8
14 1 1
11
7
NL
NL
NL NL NL
NL NL
NP 453
16
NP
NP NP
NP
NP
NP
201 17
23
16
16
13
71
3
3
3
2
1
NL
NLI NL NL
NL
NL
NL
NP 165
56
NP/ NP NP NP NP NP
91
6
5
9
7
7
41
2
1
4
2
2
NL
NL
NL NL
NL
NL
NL
NP
NP
NP NP NP
NP
NP
Positive Control
466 7
Solvent Control
16 2
Concentration per plate
50 100 500 1000
14 .14
15
16
4
5
3
5
5000
16 4
NL
NL
NL NL NL
NL NL
NP
NP
NP NP
NP
NP
NP
31
SITEK Study NO. 0623-2140
TABLE 4
- SALMONELLA TYPHIMURIUM/ESCHERICHIA COLI PLATE INCORPORATION MUTATION ASSAY MUTATION ASSAY RESULTS WITH S-9 ACTIVATION
SPONSOR: EXPERIMENT NO.:
TEST ARTICLE:
Primedica Redfield 5-1 Potassium Perfluorobutane Sulfonate
SITEK STUDY NO.: SOLVENT: CONC. IN:
0623-2140 DMSO pg/plate
DATE PLATED:
0811 5/00
LAWN'
I
CELLS SEEDED:
1.798 x 10' PRECIPITATE
STRAIN: TAl537
REVERTANTS
DATE PLATED:
STD. DEV.
0811 5/00
LAWN
CELLS SEEDED:
1.128 x 10' PRECIPITATE
NL
NP 288
3
NL
NP
NL
NL NL
NL NL
NL
NP
NP NP
NP
NP
NP
9
9
11
9
5
7
5
3
4
1
2
1
NL
NL NL
NL
NL
NL
NP
NP NP NP
NP
NP
E. coli
STRAIN: WP2uvrA
REVERTANTS
DATE PLATED:
STD. D EV.
0811 5/00
LAWN
CELLS SEEDED:
2.334 x 10' PRECIPITATE
NL = Normal, healthy microcolony lawn.
Positive Control
197 24
Solvent Control
21
3
Concentration per plate
50 100 500 1000
23
20
25
17
3
7
2
2
5000 17 4
NL
NL
NL NL NL NL
NL
NP
NP
NP NP
NP
NP
NP
NP = No precipitate.
32
SlTEK RESEARCHLABORATORIES
SITEK Study NO. 0623-2140
TABLE 5 SALMONELLA TYPHIMURIUMIESCHERICHIA COLI PRINCUBATION MUTATION ASSAY
MUTATION ASSAY RESULTS - WITHOUT ACTIVATION
S. typhimurium
STRAIN: TA98 DATE PLATED: 09/20/00
CELLS SEEDED: 1. I 60 x 10'
STRAIN: TA100 DATE PLATED: 09/20/00
CELLS SEEDED: 2.026 x 10'
STRAIN: TA1535 DATE PLATED: 09/20/00
CELLS SEEDED: 2.002 x 10'
STRAIN: TA1537 DATE PLATED: 09/20/00
CELLS SEEDED: 0.814 x 10'
REVERTANTS STD. DEV.
LAWN
PRECIPITATE REVERTANTS STD. DEV.
LAWN
PRECIPITATE REVERTANTS STD. DEV.
LAWN
PRECIPITATE REVERTANTS STD. DEV.
LAWN
PRECIPITATE
STRAIN: WP2uvrA DATE PLATED: 09/20/00
CELLS SEEDED: 2.360 x 10'
REVERTANTS STD. DEV.
LAWN
PRECIPITATE
Positive Control
544 23
Average No. of Revertants Per Plate
Solvent
Concentration per plate
Control
50 100 500 1000
24' 24
24
27
27
7
9
6
6
2
5000 33 3
NL
NP 495
30
NL, NL NL
NL
NL
NL
NPI NP NP NP NP NP
691 75
76
82
74
83
8!
8
2
6
9
4
NL
NL
NL NL
NL
NL
NL
NP 405
39
NP
NP NP
NP
NP NP
16
19
16
15
17
17
2
4
7
3
4
4
NL
NL
NL NL
NL
NL
NL
NP 290
48
NL
NP
NP
NP NP NP
NP NP
133 ~ 3
6 2
7 3
6 2
6 2
NLi NL NL
NL
NL
NL
I N P ' NP NP NP NP NP
552 17
NL
NP
181 18 ' 2 2
21
21
17
6:
1
7
3
4
8
NLII
NL NL
NL
NL
NL
N P / NP NP NP NP NP
33
I 1 SITEK RESEARCHLABORATORIES
I - . I I
SITEK Study NO. 0623-2140
TEST ARTICLE: Potassium Perfluorobutane Sulfonate
CONC. IN: pg/plate
S. typhirnurium
STRAIN: TA98
REVERTANTS
DATE PLATED: 09120100
STD. D EV.
CELLS SEEDED:
LAWN
1.160 x l o 8 PRECIPITATE
STRAIN: TA100
REVERTANTS
DATE PLATED:
STD. DEV.
09/20/00
LAWN
CELLS SEEDED:
2.026 x 10' PRECIPITATE
STRAIN: TAl535
REVERTANTS
DATE PLATED: 09/20/00
STD. DEV.
LAWN
,
CELLS SEEDED:
2.002 x 10' PRECIPITATE
STRAIN: TA1537
REVERTANTS
DATE PLATED: 09/20/00
STD. DEV.
LAWN
CELLS SEEDED:
0.814 x 10' PRECIPITATE
Positive Control
623 19
Average No. of Revertants Per Plate
Solvent
Concentration per plate
Control
50 100 500 1000
35
38
36
40
39
1
4
6
5
4
5000 38 5
NL
NL
NL NL NL
NL NL
NP 495
38
NP
NP NP NP NP NP
82
97
88
98
95
88
5
14
10
13
4
8
NL
NL
NL NL
NL
NL NL
NP 123
10
NP
NP NP
NP
NP NP
17
18
19
16
16
13
2
3
3
2
1
6
NL
NL
NL NL NL
NL
NL
NP
NP
NP NP
NP
NP NP
58
11
6
9
9
10
9
2
3
1
2
1
4
1
NL
NL
NL NL
NL
NL
NL
NP
NP
NP NP
NP NP
NP
E. coli
STRAIN: WP2uvrA
REVERTANTS
DATE PLATED: 09/20/00
STD. DEV.
LAWN
CELLS SEEDED:
2.360 x lo8 PRECIPITATE
NL = Normal, healthy microcolony lawn.
Positive Control
229
17
Solvent Control
19
4
Concentration per plate
50 100 500 1000
23 . 25
24
20
2
6
2
4
5000
19 4
NL
NL
NL NL
NL
NL
NL
NP
NP
NP NP
NP
NP NP
NP = No precipitate.
34
SITEK Study NO. 0623-2140
APPENDIX I1 DETAILED PLATE COUNTS AND BACKGROUND LAWN EVALUATION
i
35
SITEK RESEARCLHABORATORIES
SITEK Study NO. 0623-2140
SALMONELLA TYPHlMURlUM PLATE INCORPORATION MUTATION ASSAY RANGE FINDING TEST COLONY COUNTS AND BACKGROUND LAWN EVALUATION
EXPERIMENT NO.: A-1
SITEK STUDY NO.:
TEST ARTICLE: Potassium Petfluorobutane
SOLVENT:
S ulfo nate
STRAIN:
0623-2140 DMSO TAlOO
WITHOUT ACTIVATION
Test Article Conc. pglplate 5.0 10 50 100 500 1000 5000
No. of
Revertants Chem.Background
Per Plate PPT.
Lawn
(raw) (corrected) Eval.* Evaluation**
53
59 NP
NL
56
62 NP
NL
46
52 NP
NL
65
72 NP
NL
49
55 NP
NL
64
71 NP
NL
52
58 NP
NL
No. of
Viable
Colonies/Plate
(raw) (corrected)
198
21 2
228
244
224
240
197
21 1
237
254
239
256
233
249
R elative
Cloning Efficiency
(RCE) 78% 90% 89% 78% 94% 94% 92%
S 0LVENT CONTROL 53
59 NP
NL
253
27 1
100%
RCE =
No. of Colonies in Test Plates No. of Colonies in Solvent Control Plates
x 100
* Chemical Precipitate Evaluation
NP = No precipitate SP = Slight precipitate; noticeable precipitate on the plate, but no
interference with automated plate counting
MP = Moderate precipitate; marked precipitate necessitating hand
counting for colony enumeration HP = Heavy precipitate; large amount of precipitate rendering hand
counting difficult or impossible
** Background Lawn Evaluation
NL = Normal, healthy microcolony lawn SR = Noticeable thinning of the microcolony lawn compared to control MR = Marked thinning of the microcolony lawn and increase in size of
microcolonies compared to control ER = Extreme thinning of the microcolony lawn and large increase in
size of microcolonies compared to control AB = Absence of microcolonies
OP = Obscured by precipitate
1
36
1J- SITEK RESEARCHLABORATORIES
I -1r t
SITEK Study NO. 0623-2140
SALM0NELLA TYPHIMURI UM PLATE INCOR PORAT10N MUTAT10N AS SAY
RANGE FINDING TEST COLONY COUNTS AND BACKGROUND LAWN EVALUATION
EXPERIMENT NO.: A - 1
SlTEK STUDY NO.:
TEST ARTICLE: Potassium Perfluorobutane
SOLVENT:
Sulfonate
STRAIN:
0623 -21 40 DMSO TA100
WITH S-9 ACTIVATION
Test Article Conc. pg/plate 5.0 10 50 100 500 1000 5000
No. of
Revertants
Per Plate
(raw) (corrected)
62
69
63
70
77
84
60
67
53
59
57
63
56
62
Chem. Background
PPT.
Lawn
Eval.* Evaluation**
NP
NL
NP
NL .
NP
NL
NP
NL
NP
NL
NP
NL
NP
NL
No. of
Viable
Co lo nies/Plate
(raw) (corrected)
508
540
540
574
507
539
51 3
545
478
508
492
523
509
541
Relative Cloning Efficiency
(RCE) 115% 122% 115% 116% 108% 112% 115%
SOLVENT CONTROL 66
73 NP
NL
44 1
469
100%
RCE =
No. of Colonies in Test Plates No. of Colonies in Solvent Control Plates
x 100
* Chemical Precipitate Evaluation
NP = No precipitate SP = Slight precipitate; noticeable precipitate on the plate, but no
interference with automated plate counting
MP = Moderate precipitate; marked precipitate necessitating hand counting for colony enumeration
HP = Heavy precipitate; large amount of precipitate rendering hand
counting difficult or impossible
** Background Lawn Evaluation
NL = Normal, healthy microcolony lawn SR = Noticeable thinning of the microcolony lawn compared to control MR = Marked thinning of the microcolony lawn and increase in size of
microcolonies compared to control ER = Extreme thinning of the microcolony lawn and large increase in
size of microcolonies compared to control AB = Absence of microcolonies OP = Obscured by precipitate
37
SITEK Study NO. 0623-2140
ESCHERICHIA COLI PLATE INCORPORATION MUTATION ASSAY RANGE FINDING TEST COLONY COUNTS AND BACKGROUND LAWN EVALUATION
EXPERIMENT NO.: A-1 TEST ARTlC LE: Potassiurn Perfluor0butane
Sulfonate
SITEK STUDY NO.: SOLVENT: STRAIN:
0623-2140 DMSO WP2uvrA
WITHOUT ACTIVATION
Test Article Conc. pg/plate 5.0 10 50 100 500 1000 5000
No. of
Revertants Chem.Background
Per Plate PPT.
Lawn
(raw) (corrected) Eval.* Evaluation**
9
13 NP
NL
9
13 NP
NL
7
10 NP
NL
7
10 NP
NL
5
8 NP
NL
11
15 NP
NL
7
10 NP
NL
No. of
Viable
Colonies/P late
(raw) (corrected)
958
1016
94 1
998
943
1000
836
887
960
1018
949
1006
943
1000
Relative Cloning Efficiency
(RCE) 107% 105% 106%
94% 108% 106% 106%
SOLVENT CONTROL 13
17 NP
NL
892
946
100%
i
RCE =
No. of Colonies in Test Plates
x 100
No. of Colonies in Solvent Control Plates
* Chemical Precipitate Evaluation
NP = No precipitate SP = Slight precipitate; noticeable precipitate on the plate, but no
interference with automated plate counting MP = Moderate precipitate; marked precipitate necessitating hand
counting for colony enumeration HP = Heavy precipitate;.large amount of precipitate rendering hand
counting difficult or impossible
** Background Lawn Evaluation
NL = Normal, healthy microcolony lawn SR = Noticeable thinning of the microcolony lawn compared to control MR = Marked thinning of the microcolony lawn and increase in size of
microcolonies compared to control ER = Extreme thinning of the microcolony lawn and large increase in
size of microcolonies compared to control AB = Absence of microcolonies OP = Obscured by precipitate
38
SITEK Study NO. 0623-2140
ESCHERICHIA COLI PLATE INCORPORATION MUTATION ASSAY RANGE FINDING TEST COLONY COUNTS AND BACKGROUND LAWN EVALUATION
EXPERIMENT NO.: A-1
SITEK STUDY NO.:
TEST ARTICLE: Potassium Perfluorobutane
SOLVENT:
Sulfonate
STRAIN:
0623-2140 DMSO WP2uvrA
WITH S-9 ACTIVATION
Test Article Conc. pg/plate 5.0 10 50 100 500 1000 5000
No. of
Revertants ChemBackground
Per Plate PPT. Lawn
(raw) (corrected) Eval.* Evaluation**
14
18 NP
NL
12
16 NP
NL
9
13 NP
NL
8
12 NP
NL
8
12 NP
NL
13
17 NP
NL
18
22 NP
NL
No. of
Viable
Colonies/Plate
(raw) (corrected)
1038
1100
1079
1144
1128
1196
1019
1080
1058
1122
1114
1181
1149
1218
Relative
Cloning
Efficiency
(RCE) 96%
100%
104%
'
94%
98%
103%
106%
SOLVENT CONTROL 16
20 NP
NL
1084
1149
100%
RCE =
No. of Colonies in Test Plates
x 100
No. of Colonies in Solvent Control Plates
* Chemical Precipitate Evaluation
NP = No precipitate
SP = Slight precipitate; noticeable precipitate on the plate, but no interference with automated plate counting
MP = Moderate precipitate; marked precipitate necessitating hand counting for colony enumeration
HP = Heavy precipitate: large amount of precipitate rendering hand counting difficult or impossible
** Background Lawn Evaluation
NL = Normal, healthy microcolony lawn SR = Noticeable thinning of the microcolony lawn compared to control MR = Marked thinning of the microcolony lawn and increase in size of
microcolonies compared to control ER = Extreme thinning of the microcolony lawn and large increase in
size of microcolonies compared to control AB = Absence of microcolonies OP = Obscured by precipitate
39
SITEK Study NO. 0623-2140
WITHOUT ACTIVATION
S. typhimurium
STRAIN: TA98
REVERTANTS
PER
DATE PLATED:
PLATE
08115/00
!AWN
CELLS SEEDED:
1.692 x 10' PRECIPITATE
STRAIN: TA100
REVERTANTS
PER
DATE PLATED:
PLATE
08115/00
LAWN
CELLS SEEDED:
0.964 x 10' PRECIPITATE
STRAIN: TA1535
REVERTANTS
PER
1
DATE PLATED:
PLATE
08115/00
LAWN
CELLS SEEDED:
1.798 x 10' PRECIPITATE
STRAIN: TA1537
REVERTANTS
PER
DATE PLATED:
PLATE
0811 5/00
LAWN
CELLS SEEDED:
1 . 1 2 8 ~10' PRECIPITATE
Positive Control
683 727 680
Solvent Control
21 27 27
NL
NL
NP
NP
423
55
485
61
457
66
NL
NL
NP
NP
408
8
436
21
432
18
NL
NL
NP
NP
108
4
141
9
21 1
3
NL
NL
NP
NP
Concentration per plate
50 100 500 1000
34
37
31
17
26
25
28
32
38
35
36
38
5000 20 39 19
NL NL
NL
NL
NL
NP NP NP NP NP
80
63
77
70
75
67
63
61
82
65
78
87
81
61
62
NL NL
NL
NL
NL
NP NP NP NP NP
16
22
16
13
10
12
17
10
10
8
11
18
11
12
10
NL NL
NL
NL
NL
NP NP NP NP NP
1
2
3
4
2
3
3
10
6
6
5
2
4
2
4
NL NL
NL
NL
NL
NP 'NP
NP
NP
NP
E. coli
STRAIN: WP2uvrA
REVERTANTS
PER
DATE PLATED:
PLATE
0811 5/00
LAWN
CELLS SEEDED:
2.334 x 10' PRECIPITATE
NL = Normal, healthy microcolony lawn.
Positive Control
444 438 431
Solvent Control
11 14 11
Concentration per plate
50 100 500 1000
14
9
13
14
7
15
8
7
9
7
12
16
5000 16 12 8
NL
NL
NL NL
NL
NL
NL
NP
NP
NP NP
NP
NP
NP
NP = No precipitate.
40
SITEK Study NO. 0623-2140
SALMONELLA TYPHIM URIUM/ESCHERlCHlA COLI PLATE INCORPORATION MUTATlON ASSAY MUTATION ASSAY CORRECTED COLONY COUNTS AND BACKGROUND LAWN EVALUATIO' N
S. typhimurium
STRAIN: TA98
REVERTANTS
PER
DATE PLATED:
PLATE
0811 5/00
LAWN
CELLS SEEDED:
1 1.692 x 10'1 PRECIPITATE
STRAIN: TA100
REVERTANTS
PER
DATE PLATED:
PLATE
08l15/00
LAWN
CELLS SEEDED:
0.964 x 10' PRECIPITATE
STRAIN: TA1535
REVERTANTS
PER
DATE PLATED:
PLATE
08115/00
LAWN
1.798 x 10' STRAIN: TA1537
DATE PLATED: 0811 5/00
PRECIPITATE REVERTANTS PER PLATE
LAWN
STRAIN: WP2uvrA
DATE PLATED: 08115/00
1 REVERTANTS
PER PLATE
Positive Control
725 772 722
NL
Solvent Control
25 32 32
NNLLI
NP
NP I
450
61 I
51 6
68
486
73
NL
NLI
I
I
NP
NPI
434
12
464
25
460
22
NL
NP
NP
117
7
152
13
226
6
NL
NLI
Concentration per plate
50 100 500 1000
39
42
36
21
31
30
33
37
43
40
41
43
5000 24 44 23
NL NL NL NL NL
NP NP NP NP NP
88
70
84
77
82
74
70
68
90
72
86
95
89
68
69
NL NL NL NL NL
NP NP NP NP NP
20
26
20
17
14
16
21
14
14
12
15
22
15
16
14
NP NP NP NP NP
4
5
6
7
5
6
6
14
9
9
8
5
7
5
7
NL NL NL NL NL
1 Positive Solvent 1
Concentration per plate
1
472
151 18
13
17
18
20
466
18
10
19
12
10
16
459
15
13
10
16
20
12
41
SITEK Study NO. 0623-2140
SALMONELLA TYPHIMURIUMIESCHERICHIA COLI PLATE INCORPORATION MUTATION ASSAX MUTATION ASSAY RAW COLONY COUNTS AND BACKGROUND LAWN EVALUATION
EXPERIMENT NO.: TEST ARTICLE:
S. typhimurium
B-1
SITEK STUDY NO.:
Potassium Perfluorobutane Sulfonate
SOLVENT:
CONC. IN:
WITH S - 9 ACTIVATION
0623-2140 DMSO pglplate
1 Positive Solvent 1
Concentration per plate
PER
DATE PLATED:
PLATE
0811 5/00
LAWN
CELLS SEEDED:
1.692 x 1O6 PRECIPITATE
STRAIN: TA100
REVERTANTS
PER
DATE PLATED:
PLATE
0811 5/00
LAWN
0.964 x 10'1 PRECIPITATE
STRAIN: TA1535
I REVERTANTS
PER
DATE PLATED:
PLATE
08/15/00
LAWN
1.798 x 10'1 PRECIPITATE
STRAIN: TA1537
REVERTANTS
PER
DATE PLATED:
PLATE
0811 5/00
LAWN
CELLS SEEDED:
1.128 x 10' PRECIPITATE
1-
1472
47
1409
35
I
NL
NL\
NP
NP/
1098
76
1276
73
1187
77
NL
NL/
NP
NP/
175
101
188
6
192
22
NL
NL/
I NP
NP
267
3
269
3
272
11
NL
NL
NP
NP
1 Positive Solvent 1
35
47
46
40
42
43
58
34
NL NL
NP NP NP NP
66
80
70
61
82
84
67
71
53
73
62
73
NL NL
NL
NL
NP NP NP NP
20
7
9
12
7
11
5
8
7
14
7
12
NL NL NL NL
NP NP NP NP
5
8
7
2
4
3
5
1
8
10
5
4
NL NL
NL
NL
NP 'NP
NP
NP
Concentration per plate
47 32
NP 57 72 76
NL
NP 8 7 7
NL
NP 5 3 5
NL
NP,
1
DATE PLATED: 0811 5/00
CELLS SEEDED: 2.334 x 10'
PER PLATE
LAWN
PRECIPITATE
200 192
NL
NP
15
22
15
20
22
22
NL
NL NL
NL
NL
NL
NP
NP NP NP NP NP
42
SITEK Study NO. 0623-2140
SALMONELLA TYPHIMURIUM/ESCHERICHIA COLI PLATE INCORPORATION MUTATION ASSAY MUTATION ASSAY CORRECTED COLONY COUNTS AND BACKGROUND LAWN EVALUATION
EXPERIMENT NO.: TEST ARTICLE:
B - 1
SITEK STUDY NO.:
Potassium Perfluorobutane Sulfonate
SOLVENT:
CONC. IN:
WITH S - 9 ACTIVATION
0623-2140 DMSO pglplate
S. tvphirnurium
STRAIN: TA98
REVERTANTS
PER
DATE PLATED:
PLATE
08/15/00
LAWN
CELLS SEEDED:
1.692 x 10' PRECI PITATE
STRAIN: TA100
REVERTANTS
PER
DATE PLATED:
PLATE
08/15/00
LAWN
CELLS SEEDED:
0.964 x 10' PRECIPlTATE
STRAIN: TA1535
REV ERTA NTS
PER
DATE PLATED:
PLATE
08/15/00
LAWN
CELLS SEEDED:
1.798 x 10'
STRAIN: TA1537
PER
DATE PLATED:
PLATE
0811 5/00
LAWN
CELLS SEEDED:
1.128x l o e PREClPlTATE
I Positive
Control
1468 1559 1493
Solvent 1
Control
34 53 40
NL
NL
NP
NP
1164
83
1352
80
1258
04
NL
NL
I
NP
NP/
188
14i
202
9
206
26
NL
NL
Concentration p. er .plate 50 100 500 1000
42
49
52
42
40
53
52
45
47
49
64
39
1
5000 45 53 37
NL NL
NL
NL
NL
NP NP NP NP NP
73
88
77
68
63
90
92
74
78
79
59
80
69
80
83
NL NL
NL
NL
NL
NP NP NP NP NP
24
10
13
16
12
10
15
8
12
10
10
18
10
16
10
NL NL
NL
NL
NL
287 291
NL NP
6
7
6
8
4
6
15
12
14
8
7
8
NL
NL NL
NL
NL
NL
NP
NP 'NP
NP
NP
NP
E. coli
STRAIN: WP2uvrA
REVERTANTS
PER
DATE PLATED:
PLATE
0811 5/00
LAWN
CELLS SEEDED:
2.334 x 10'1 PRECIPITATE
Positive Control
170 21 5 206
Solvent Control
24 19 19
NL
NL
Concentration per plate
50 100 500 1000
20
20
27
16
26
13
23
19
24
26
26
17
5000 17 14 21
NL NL
NL
NL
NL
43
-
I 'rr t SITEK RESEARCLHABORATORIES
SITEK Study NO. 0623-2140
SALMONELLA TYPHIMURIUM/ESCHERICHIA COLI PRINCUBATION MUTATION ASSAY MUTATION ASSAY RAW COLONY COUNTS AND BACKGROUND LAWN EVALUATION
EXPERIMENT NO.: TEST ARTICLE:
8-2
SITEK STUDY NO.:
Potassium Perfluorobutane Sulfonate
SOLVENT:
CONC. IN:
WITHOUT ACTIVATION
0623-2140
DMSO pglplate
S. typhimurium
Positive Solvent
Concentration per plate
Control Control
50 100 500 1000 5000
REVERTANTS
530
13
18
16
23
21
31
PER
51 0
26
13
17
DATE PLATED:
PLATE
487
19
29
26
28
09/20/00
LAWN
NL
NL
NL NL
NL
NL
NL
CELLS SEEDED:
PR ECI PlTATE
NP
NP
NP NP NP NP NP
REVERTANTS
470
58
60
71
71
76
73
PER
435
59
68
69
81
59
79
DATE PLATED:
PLATE
491
72
75
67
73
60
74
09/20/00
LAWN
NL
NL
NL NL
NL
NL
NL
CELLS SEEDED:
PRECIPlTATE
NP
NPI NP NP NP NP NP
REVERTANTS
41 7
121 13
19
9
12
12
PER
'i
DATE PLATED:
PLATE
379
11
13
12
14
10
18
344
14
20
7
10
17
10
09/20/00
LCELLS SEEDED: 2.002 x 10' STRAIN: TA1537
DATE PLATED: 09/20/00
CELLS SEEDED: 0.814 x 10'
LAWN
P RECl PlTATE REVERTANTS PER PLATE
LAWN
PRECl PlTATE
NL
-NL
NL NL
N L .NL NL
I
NP
31 1
281
221
N P / NP NP NP NP NP
101
4
4
4
3
3
11
6
1
1
4
1
6
1
4
7
1
4
NL
NL
NL NL
NL
NL
NL
NP
NP
NP NP NP NP NP
STRAIN: WP2uvrA
DATE PLATED: 09/20/00
I REVERTANTS
PER PLATE
LAWN
I Positive
I Control
I
535
519
503
I Solvent Control I
151 20
8
NL
NL(
Concentration per plate
50 100 500 1000
14
17
19
14
15
25
18
16
13
12
14
21
1
5000
14 6
20
NL NL NL NL NL
44
SlTEK RESEARCLHABORATORIES ' I lir t
SITEK Study NO. 0623-2140
SALMON ELLA TYPHIM URIUM/ESCHERICHIA COLI PAINCUBATION MUTATION ASSAY MUTATION ASSAY CORRECTED COLONY COUNTS AND BACKGROUND LAWN EVALUATION
EXPERIMENT NO.: TEST ARTICLE:
8-2
SITEK STUDY NO.:
Potassium Perfluorobutane Sulfonate
SOLVENT:
CONC. IN:
WITHOUT ACTIVATION
0623-2140 DMSO pg/plate
S. tvphimurium
I Positive Solvent 1
Concentration per plate
STRAIN: TA98
I REVERTANTS
PER
DATE PLATED:
PLATE
09/20/00
LAWN
CELLS SEEDED:
1.160 x 10' PRECIPITATE
STRAIN: TA100 DATE PLATED:
I REVERTANTS
PER PLATE
09/20/00
LAWN
CELLS SEEDED:
2.026 x 10'1 PRECIPITATE
STRAIN: TA1535
1 REVERTANTS
PER
DATE PLATED:
PLATE
09/20/00
LAWN
CELLS SEEDED:
2.002 x 10' PRECIPITATE
STRAIN: TA1537
REV ERTANTS
PER
DATE PLATED:
PLATE
09/20/00
LAWN
CELLS SEEDED:
0.814 x IO' PRECIPITATE
563 551 51 8
NL
NP
I 500 463 522
NL
I
NP
I
444
404
367
NL
NP 332 300 237
NL
NP
171 22
20
27
25
31
17
21
22
27
23
34
31
33
28
NL
NL NL
NL
NL
NP
NP NP NP NP
64
67
78
78
83
651 75
76
89
65
79
82
74
a0
75
NL
NL NL
NL
NL
N P / NP NP NP NP
161 17
23
13
16
15
17
16
18
14
18
24
10
14
21
NL
NL NL
NL NL
NP
NP NP
NP
NP
14
7
7
7
6
15
9
4
4
7
9
4
7
10
4
NL
NL NL
NL
NL
NP
NP NP
NP
NP
I
36 34 30
NL
NP 80 871 81
NL
N 1 22 14
NL
NP 6 4 7
NL
NP
STRAIN: WP2uvrA
REVERTANTS
PER
DATE PLATED:
PLATE
09/20/00
LAWN
CELLS SEEDED:
2.360 x 1O6 PRECIPITATE
Positive Control
569 552 535
Solvent Control
19 24 12
NL
NL
NP
NP
Concentration per plate
50 100 500 1000
18
21
23
18
19
30
22
20
17
16
18
25
5000 18 9 24
NL NL
NL
NL
NL
NP NP NP NP NP
45
I 1 SITEK RESEARCLHABORATORIES
SITEK Study NO. 0623-2140
S.typhimurium
STRAIN: TA98
DATE PLATED: 09/20/00
CELLS SEEDED: 1.160x 10'
STRAIN: TAlOO
DATE PLATED: 09/20/00
CELLS SEEDED: 2.026 x 10'
STRAIN: TA1535
DATE PLATED: 09/20/00
CELLS SEEDED: 2.002 x 10'
STRAIN: T A I 537 '
DATE PLATED: 09/20/00
CELLS SEEDED: 0.814 x 10'
REVERTANTS PER PLATE
LAWN
PRECIPITATE REVERTANTS PER PLATE
LAWN
PRECIPITATE REVERTANTS PER PLATE
LAWN
PRECIPITATE REVERTANTS PER PLATE
LAWN
PRECIPITATE
STRAIN: WP2uvrA
DATE PLATED: 09/20/00
CELLS SEEDED: 2.360 x 10'
REVERTANTS PER PLATE
LAWN
PRECIPITATE
Positive Control
567 603 588
Solvent Control
30 30 31
NL
NL
NP
NP
445
73
507
79
443
71
NL
NL
NP
NP
104
11
113
14
122
15
NL
NL
NP
NP
52
8
53
4
50
9
NL
NL
NP
NP
Positive Control
226 196 21 8
1 C"Ivoenntrtol 19 12 15
NL
NL
NP
NP
Concentration per plate
50 100 500 1000
37 29 30 37
30 27 38 36
32
38
38
29
5000 37 33 28
NL NL
NL
NL
NL
NP NP NP NP NP
96 78 76 85 76
74
91
97
05
77
96 72 97 92 90
NL NL
NL
NL
NL
NP NP NP NP NP
11
15 1 1
13 1 1
16 17 15 12
4
14 12 1 1
12 14
NL NL
NL
NL
NL
NP NP NP NP NP
2
7
6
7
5
4
4
7
3
6
3
7
5
9
7
NL NL
NL
NL
NL
NP 'NP
NP
NP
NP
Concentration per plate
50 100 500 1000
17
15
20
13
21
21
22
21
18
26
19
14
5000 15 19 11
NL NL
NL
NL
NL
NP NP NP NP NP
46
1SITEK RESEARCLHABORATORIES
SITEK Study NO. 0623-2140
SALMONELLA TYPHIMURIUM/ESCHERICHIA COLI PRINCUBATION MUTATION ASSAY MUTATION ASSAY CORRECTED COLONY COUNTS AND BACKGROUND LAWN EVALUATION
EXPERIMENT NO.: TEST ARTICLE:
8-2
SITEK STUDY NO.:
Potassium Perfluorobutane Sulfonate
SOLVENT:
CONC. IN:
WITH S-9 ACTIVATION
0623-2140 DMSO pg/plate
3. typhirnuriurn
STRAIN: TA98
)ATE PLATED: 29/20/00
I REVERTANTS
PER PLATE
1 LAWN
Positive
Control
I
603
641
625
Solvent Control
35 35 36
I
NL
NLI
Concentration per plate
50 100 500 1000
42
34
35
42
35
32
43
41
37
43
43
34
5000 42 38 33
NL NL NL NL NLI
1.160 x 10'1 PRECIPITATE
NP
NP/ NP NP NP NP NP
>ATE PLATED: 39/20/00
PER PLATE
LAWN
539 47 1
NL
87
81
99 106
93
84
78 105
79 106 100
98
NLI
NL NL
NL
NL
NL
2.026 x 10'1 PRECIPITATE
STRAIN: TA1535
REV E RTA NTS
PER
DATE PLATED:
PLATE
09/20/00
LAWN
CELLS SEEDED:
2.002 x 10'1 PRECIPITATE
STRAIN: TA1537
I REVERTANTS
PER
DATE PLATED:
09./~20./00 ~
PLATE
LAWN
CELLS SEEDED: 0.814 x 10' PRECIPITATE
IE. coli
STRAIN: WP2uvrA
I09/20/00 CELLS SEEDED:
I REVERTANTS
PER PLATE
LAWN
NP
NP/
113
15
123
18
132
19
NL
NL
I
NP
NPI
58
121
7 1 59
56
13'
I
NL
NL
NP
NP
I Positive Solvent 1
242
231
21 0
16
234
19
NL
NL
NP NP NP NP
15
19
15
17
20
21
19
16
18
16
15
16
NL NL
NL
NL
NP NP NP NP
5
10
9
10
;
7 10
10 0
6 13
NL NL
NL
NL
NP . N P
NP
NP
Concentration per plate
21
19
24
17
25
25
26
25
22
31
23
10
NL NL
NL
NL
NP 15
7 18
NL
NP 8 9 10
NL
NP
i
19 23 15
NLI
47
SITEK Study NO. 0623-2140
APPENDIX I11 STUDY PROTOCOL AND PROTOCOL AMENDMENTS
48
I Ar, I
SITEK Study NO. 0623-2140
EVALUATION OF A TEST ARTICLE IN TH ESCHERICHIA COLI PLATE INCORPORAT
A S S A Y I N T H E PRESENCE AND A
RAT LIVER S-9
P This protocol is resented in two parts. Part One is designed to colled
information ertaining o the test article and study. Part Two describes the studyzs? in detail. P l a s e complete all sections in Part One and sign Section 8.0 to a p p m
protocol.
PART ONE
1.0 SPONSOR 1.1 Name: Pnmedica Redfield
1.2 Address: 100 E.Boone Street
Redfield. AR 72132
1.3 Sponsor's Study Coordinator: John Senci. Ph.0.
2.0 TESTING FACILITY 2.1 Name: SITEK Research Laboratories
2.2 Address: 15235 Shad Grove Road, Suite 303
Rockville. trlatyland 20850
2.3 Study Director. Kamala J. Pant, M.S.
3.0 STUDY NUMBERS
* 3.1 Testing Facility's Study No.:
dhg.3-2/4f3
3.2 Sponsor's Study No.:
132-008
4.0 TEST ARTICLE
4.1 Identification
Name: Potassium Perfluombutane Sulfonate, CAS # 2942049-3
Batch/Lot No.: Lot #2
l o be completed by the Testing Facility. Protocol No. 2140.4 031299
49
Page I of 16
A: ' SITEK RESEARCHLABORATORIES
4.2 Description '
Color: White
Physical Form: Solid, free flowins powder
4.3 Analysis
Purity Information: 100%
Does the Sponsor require the use of a correction factor to account for impurity?
- Yes
- X No
If yes, what is the correction factor?
Determination of the test article characteristics as defined by Good Laborato
U.g Practices will be the res onsibill of the S onsor. The specific GLP references for
a encies are: FDA = 2PCFR. 5x105; EP61 TSCA = 40 CFR, 792.105 and EPA FIFRA =
4a CFR 160.105.
4.4 Stabilitv
Storage Conditions (check one):
- X Room Temperature
-Refrigerated (1-5C)
I
-Frozen (-10 to -20C)
-Other (please specify):
Expiration Date: 04-06-01
4.5 Preferred Solvent (check one):
-H P
-Acetone
-DMSO
-Ethanol
-Other (please specify):
X To be decided by the Testing Facility
4.6 Special Handlinq Instructions:
Standard precaution (MSDS attached)
Protocol No. 2140.4 031299
50
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' ' SlTEK RESEARCHLABORATORIES
A:
5.0 REGULATORY AGENCY SUBMISSION
PracticeThsitsansdtuadrd(s:will be conducted in compliance with the following Good Laboratory
United States Environmental Protection A ency, Title 40 Code of Federal Regulations Parts 160 and 792, Revised July 1, 1999.
United States Food and Drug Administration, Title 21 Code of Federal Regulations
Part 58, Revised Apnl I,1998.
Japanese Ministry of Agriculture, Forestry and Fisheries, 59 Nohsan, Notification No. 3850, Agriculture Production Bureau, August 10, 1984.
Japanese Ministry of Health and Welfare, Ordinance No. 21, April 1, 1997.
2 Japanese Minist
Industries Bureau, Mar
of International
31, 1984.
Trade
and
Industry,
Notification
No.
85,
Basic
Organisation for E-mnomic Cooperation and Development, The OECD Principles
of Good Laboratory Practice, Environment Monograph No. 45, Pans 1992.
Will this study be submitted to a regulatory agency?
Yes
- No
\; Ifso, which agency(ies)? OECD
6.0 TEST ARTICLE/DOSING SOLUTIONS CHARACTERIZATION
The U S . re uirements for anal sis of dosing solutions are specified in: FDA = 21 CFR, 58.113; EPACf`SCA = 40 CFR, h2.113; and EPA FIFRA = 40 CFR, 160.113.
Does the Sponsor want dosing solution analysis?
Yes**
- No
Ifyes, please complete the rest of this section.
If re uested by the Sponsor, SlTEK Research Laboratories will determine the
2 strength an stability of the dosin solutions. The method of analysis may be provided by
!i the Sponsor, or if requested by t e Sponsor, SITEK Research Laboratories will develop
the method of analysis.
R Additional charges Will apply. See Special Services pnce schedule.
i
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SlTEK RESEARCHLABORATORIES
~~
~
~
~~~
SITEK Study NO. 0623-2140
Alternatively, the Sponsor will be responsible for determining the strength and
stability of the dosing solutions.
Dosing solution analysis will be performed by:
-SITEK Research Laboratories
Sponsor
What dosing solutions will be analyzed?
From the Range Finding Test?
-Yes
-& No
From the Assay?
X Yes
-No
Which concentration(s)? All
What amount of each concentration? 2.0 mL
At what temperature should the dosing solutions be stored?
-Room Temperature
X Frozen (-10 to -20C)
-Refrigerated (1-5C)
,! 7.0 STUDYDATES 7.1 Proposed Experimental Start Date:
B ldm
Defined as the first date the test article is applied to the test system.
* 7.2 Anticipated Experimental Completion Date:
IO I1I&
Defined as the last date on which data are collected directly from the study.
* i o be completed by the Testing Facility.
I
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SITEK RESEARCLHABORATORIES
SITEK Study NO. 0623-2140
8.0 PROTOCOL APPROVAL
t
Study Director
pL4 ** 4244r &&?
Sponsor's Authonzed Kepresentative
* Quality Assurance Manager
io be completed by the Testing Facility.
Protocol No. 2140.4 031299
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1:y SITEK RESEARCLHABORATORIES
STUDY DESIGN
PART TWO
9.0 PURPOSE
7 h The pu ose of this study is to evaluate the test article for its potential to cause
mutations in t e histidine operon of Salmonella himurium strains TA98, TA100, TA1535
and TA1537 and the tryptophan operon ot t s en la strain WP2uvrA.
10.0 JUSTIFICATION FOR SELECTION OF TEST SYSTEM
The Salmonella himurium and Escherichia coli strains have been used extensively
idnettheectPinlgattehelnmcou'
paogr-eaniiocnactuiviatyioonf
Assay and haveTeen demonstrated to be effective chemicals from a wide range of classes (1-4).
in
I 1.O ABBREVIATIONS
2-AA -
2-Aminoanthra&ne
2-NF -
2-Nitrofluorene
9-AA -
9-Aminoacndine
DMSO -
Dimethyl Sulfoxide
1
MMS -
Methyl Methanesulfonate
NaAz -
Sodium Azide
NADP -
O.D. -
%T -
s-9
-
Nicotinamide-adenine Dinucleotide Phosphate Optical Density Percent Transmittance
Induced Rat Liver Homogenate
12.0 INDICATOR CELLS
12.1 Source
1 C. McCoy, Case Western
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' ' SITEK RESEARCLHABORATORIES
1;
+ rK 12.2 Culture Conditions
The Salmonella himurium.and Escherichiacoli strains are routinel grown in Oxoid Nutrient Broth No. 2 in a s a er incubator rotating3 approximately 12 rpm and maintaining a temperature of 37 +1"C.
12.3 Stock Cultures
The Salmonella himurium and Escherichia coli strains were propa ated to obtain
Pn-7-f- a sufficient number o ce s or reezing a lar e nurnEr of stock am ules. ?he cells were
c o reserved in Oxoid Nutnent Broth No. fsupplemented with 8-8% dimethyl sulfoxide
#MgO and stored in liquid nitro en vapor phase. Scrapes from stock ampules are used
b 8 initiate the stock cultures for t e test.
13.0 METABOLIC ACTIVATION
9 cp The standard rat liver Sy9 will be pre ared by inducing male Sprague-Dawley rats with
Aroclor-I254 or phenobarbital and/or If)-naphthoflavone. The livers will be aseptically
removed, washed, minced, homogenized and centrifu ed at 9OOOx . The su ematant
fraction will be pooled, dispensed in ap ropnate aliquo s, and store below - 7 8 C for up to 3 years. Prior to its use in this stud Phe S-9 will be evaluated for acceptable metabolic activity in a standard Salmonella W~&-nuriummutation assay using strain TAIOO and a single dose of 2-AA.
14.0 ROUTE OF ADMINISTRATION OF TEST ARTICLE
)
with
P The test article will be-administered in vitro djrectly or throu h a
the test cultures. This is the only route of administration avai able
solvent compatible in this test system.
15.0 TEST SYSTEM IDENTIFICATION
All test plates will be labeled using an indelible pen with a code system which clearly identifies the experiment number, the SITEK test a.rticle number, controls, doses, and whether or not the plate was treated in conjunction with an exogenous activation system.
The test article will be designated b the unique fourdigit number assigned by SITEK
J when the
f the letter
test article is received A (Range Findin Test
eo.gr.b0(M7u4ta).t.ioTnheAsesxapenfmolelonwt epdhabsyeawnilul mbebedredsiegsniatneadtinby
(80 the trial number. This will%e followed b the letter N Activation) or S p i t h S;97 w h i d
J will be followed b
Y by the numbers
t2h,e3d, o..s.einadnicdastitnraginthIe
entification numbers. highest to the lowest
The doses dose. The
will be identified strain identifica-
tion numbers will be as follows:
Salmonella typhimuriurn 1 = TA98 2 = TAIOO
3 = TA1535 4 = TA1537
Escherichia
5 = WP2uvrA
Protocol No. 2140.4 031299
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1:7 ' SlTEK RESEARCHLABORATORIES ' d
An example of a plate label follows:
0074B1-S-1-3
0074 B1
- =
S
- - -
1 3
-
SITEK Test Article Number First Mutation Assay With S-9 Highest Test Article Dose Strain TAl535
3< Y In addition to the above, the Range Findin Test and Mutation Assa viability plates
that contain 1OX (0.5mM) histidine biotin or 10 (0.5mM) tryptophan wil be designated with the prefix T.
16.0 CONTROL SUBSTANCES
16.1 Positive Controls
The positive control chemicals that will be used for the tester strains in the presence and absence of exogenous metabolic activation are presented below. The abbreviations
are defined in Section 11.O.
Strain
- S-9
Chemical
Dose bqlplate)
Salmonella b phimurrum
I
TA98
TA98
TA100 TA100
TA1535 TAI 535
TA1537 TA1537
-
2-N F
+ 2-AA
2.5-7.5 1.25-5.0
-
NaAz
+ 2-AA
0.5-2.0 1.25-5.0
-
NaAz
+ 2-AA
0.5-2.0 1.25-5.0
-
9-AA
+ 2-AA
25-75 1.25-5.0
Escherichia
- COll WP2uvrA -
WP2uvrA +
MMS 2-AA
2000-4000 10-20
DMSO will be used to solubilize the positive controls 2-AA, 2-NF and 9-AA. H,O will be used to dissolve NaAz and MMS
1
Protocol No. 2140.4 031299
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K '
SlTEK RESEARCLHABORATORIES
If necessary, other appropriate positive controls can be used with the approval of the Sponsor.
16.2 Solvent Control
L The solvent used for dissolving the test article will be used as the solvent control.
Deionized distilled water, dimethyl sulfoxide (CAS #67-68-5), ethanol (CAS #64-17-5) and acetone (kAS #67-64-1) are some of the solvents which are compatible with this test
s stem. If there is a need to use other solvents, the approval of the Sponsor will be
o tained prior to their use.
17.0 DOCUMENTATION
J All procedures, results, significant observations, and methods used for analysis of
results will be documented in a study notebook. The stud notebook will also include copies of the protocol, all protocol amendments and protocol eviations, study reports, and all relevant communications with the Sponsor.
18.0 EXPERIMENTAL PROCEDURE
18.1 In order to determine the optimal vehicle for deliverin the test artide to the test
? system or to determine the maximum achievable concentra ion in the solvent requested
by the Sponsor, a solubility/miscibility test will be erformed. The solvents of choice for this
P system are water, DMS0,acetone and ethanol: f the test article is not sufficiently soluble
) in any of these solvents, additional solvents will be screened. For solid and viscous test articles, the solubili .test will cpnsist of weighin out 20-
ty 9 to 100-mg aliquots of test article and adding solven in. 0.1 mL increments, with horough
mixing between additions, until the test article is dissolved as determined b visual
Y inspection or until 5.0 mL of solvent has been added to the vessel. The volume o solvent
required for complete dissolution and any additional .observations will be recorded in the
study notebook. Test articles that do not disso1ve.m 5.0 mL of solvent will be visually
inspected and recorded as either "not soluble," "partially soluble forming a homogeneous suspension," or "partially soluble not forming a homogeneous suspension."
For liquid test articles a miscibility test will be conducted. 0.5 rnL of solvent wi!l be
added to 0.5 mL aliquots.of the test article.. The resultin solution will be thoroughly mixed
9 and observed for miscibility. The test article will be ra ed by visual inspection as either
"not miscible," "partiall miscible," or "completely miscible" in each of the four preferred
r solvents. The miscibi ity rating and any additional observations will be recorded in the
study notebook.
+ 18.2 Preparation of Test Cultures
The strains of Salmonella himurium and Escherichia coli will be re ared from cultures that were started from scra es p aced in Oxoid NutrienfBoth No. &e cultures will be placed on the shaker, and a [mer turns on the incubator approximately 8-12 or 4-6
Protocol No. 2140.4 031299
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1SITEK RESEARCLHABORATORIES
1v
SITEK Study NO. 0623-2140
!F-'-f- E x &lac. hours for Salmonella himurium or Escherichia @ respectively,' nor to sam ling the
cultures for arowth de ermina ion. i h e incubator will be set at 12 rpm and 7 Samples fro6 each culture will be checked for Percent Transmittance (%T) at 650 nm.
d 1 Only cultures that have a %T of between 25% (O.D. 0.6 ,and 10% OgD. 1.O) will be
used. These cultures will have approximately between 50x1 and 1.Ox 0 cells per m L 18.3 Preparation of S-9 Metabolic Activation Mix
18.4 Preparation of Test Article
The desired amount of the test article as specified in the dilution scheme will be
weighed or measured just pri0.r to use in either the-Range Finding.Test or the Mutation Assay. The dosing solutions will be prepared byadding the appropnate volume of solvent to the test article and thoroughly mixing the resulting solution until the test article goes completely into solution or a homogeneous suspension is achieved.. The remaining doses
specified in the dilution scheme will be prepared by either pelformin a serial dilution or by varying the volume delivered fr0.m the stock concentratton to %e cu!tures. In all
treatments the amount of solvent delivered to the target cultures will be limited to a level
which has no cytotoxic effect on the cells. If necessary, the test article may be added
directly to the top agar. 18.5 Ranqe Findina Test In order to determine the test article concentrations that.will roduce from 0-100%
toxicity, a Ran e Findin Test will be performed with and withou! S-9 activation usi
% tester strains T i 100 and P2uvrA only. The test article wi!l be wet hed or measured, a 3
B a serial dilution will be repared. If there are no solubility/miscibility imitations prior k n o w
edge of cytotoxicity inCYicates differently, or the Sponsors ecifies different1 , the treatment
sp concentrations for solid and viscous test articles will-be 000, 1000, 500, TOO, 50, 10 and
5.0 pglplate. If the results based on the dosing re imen indicate-that the threshold level
f? of complete toxicity is below 5.0 pg/plate an addi ional Range Finding Test will be per-
formed. Only one plate per concentration condition will be used.
18.5.1 Treatment
9 been2amddLeadl,iqwuilol tbseofdmisopletennsetodptoagaasre, rtioeswohficchutltruarceetuabmeosumntasi-notfahinisetiddiante4a5n+d lbaioctin.Threaavte-
ment will be performed by addin 0.5 mL of s-9 rnix .or 0.5 mL of sterile distilled,
deionized water, 0.1 mL of tester s rain TAIOO or WP2uvrA, and 0.1 mL of tesf article to
the top agar. Appropriate solvent controls will also be prepared.
Protocol No. 2140.4 031299
58
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1:
.
dosesInwaitdhdaiti2on.0, ~pl1a0ledsilufotirondeotfetremsitneirnsgtrvaiianbTilAityIOwOillobrechpPre2puavrrAedinb&pplaagtianrgctohnetateinsitnagrt1icOlXe
(0.5mM) histidine-biotin or 1OX (0.5mM) tryptophan, respectively.
The contents will be mixed by vocexjng the tube, and then the contents will be poured onto a bottom agar plate and evenly distnbuted by gently tilting and rotating the plate. The
late will be placed on a flat, level surface until solidified. After all treatment is performed, Phe plates will be inverted and incubated at 37 +1"C for 48-72 hours.
18.5.2 Determination of Toxicity After 48-72 hours of incubation the lates will be removed from the incubator and evaluated or placed in cold storage (1-5'6 until evaluated. Evaluation of test article toxicity on the tester strain will be based on three end points:
v 1. Viability of cells plated on .minimal medium plates supplemented with excess
histidine-biotin or tryptophan. Toxici wi!l be measured as a decrease in the number of colonies per plate with increasing tes article concentration.
P 2. The number of revertant colonies on minimal.medium plates supplemented with
trace amounts of histidine-biotin .or trypto han. .Toxicity will be measured as a reduction in the number of revertant colonies per p ate with increasing test article concentration.
Y 3. The integrity of the background microcolony lawn. Toxicity will be measured as
a thinning or disappearance. of the background lawn usual1 occumng with an increase in the size of the remaining microcolonies relative to the con 1-01plates.
9 The number of revertants per plate and the number of viable colonies per plate will
be determined by countin them with an automatic colony counter or by hand as described in Sections 18.6.5.1 and 8.6.5.2.
% The counts will be.entered direct1 in the Lotus 123 computer pro ram 2140A.WK3,
and the calculations will be performeJ. The computer printouts will e included in the study notebook.
18.6 Mutation Assay
positive controls and
Protocol No. 2140.4 031299
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18.6.1 Test Culture Preparation and Exposure 18.6.1.1 Plate Incorporation Method
at 37 +1"C for 48-72 hours.
18.6.1.2 Preincubation Method
Cultures of Salmonella hirnurium, TA98, -.TAlOO TAl535 and TA1537, and
Escherichia coli WP2uvrA for u h u t a t i o n Assay will be prepared as. described in
Section 1&-he
test article .will be wei hed or measured, and a sena! dilution will be
4 performed as previously descnbed in Sec ion 18.4. 0.5 rnL of sterile, deionized, distilled
water or S-9 mix will be dispensed into a senes of labeled culture tubes, and treatment will
be performed by adding 0.1 rnL of tester strain and 0.1 mL of test article. The tubes will
be vortexed gent1 and preincubated at 37 +1"Cfor 20 minutes. The tubes are shaken at
J '
a moderate spee during the preincubation. ,Appropnafe .solvent and positive controls will also be prepared. 2.0 mL of top agar containing 1X histidine-biotin or 1X tryptophan will
be added to each culture tube after the preincubation penod. The contents of each tube
will be mixed b vortexin poured onto a bottom agar late, and evenly distributed by
J 1 gently tiltin an rotating &e plates. All of the plates will e placed on a flat, level surface
until solidifaed. After all treatments have been performed, the plates will be inverted and
incubated at 37 k1"C for 48-72 hours.
18.6.2 Confirmation of Tester Strain Genotypes
18.6.3 Tester Strain Viabilitv Determination After the Mutation Assa has been plated, a dilution.of each tester strain will be
Y pre ared, and ap roximately 50-500 bactena will be lated in top a ar supplemented with
1 0 2 0.5mM) histdine-biotin or 1OX (0.5mM) tryptoplan. These ?ates will be incubated
i P for 4 -72 hours, and then the total number of colonies that deve op will be determined.
Protocol No. 2140.4 031299
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'
SITEK RESEARCLHABORATORIES
1: -
18.6.4 Backqround Lawn Evaluation
3 & The integri of the back round microcolony lawn will be evaluated by viewing each
plate with the ai of a 2X to microscope. The lawns will be rated as normal, slightly reduced, markedly reduced, extremely reduced or absent.
18.6.5 Enumeration of Colonies
After 48-72 hours of incubation, the plates treated with the hi hest test article
? concentrationwill be observed .for the presence of recipitate. If recipi ate is absent the
P P entire assay will be counted. usin an automatic co ony counter. f observation of the high
dose plates reveals precipitate %at interferes with accurate automatic counting, those lates will be counted b hand. The procedure will be repeated for each subsequent dose
Y Kvel or until no precipi ate is evident.
18.6.5.1 Automatic Colony Countinq
! Each late will be placed on the stage, and three counts are made with the automatic
counter. {e plate will be rotated on the stage ap roximately 120"between each count,
and the median count will be entered directly into he computer. 18.6.5.2 Hand Countinq
the
Hand counting of colonies will bottom of the plate. The hand
Y be performed b marking a dot over
count will be en ered directly into the
each colony computer.
on
The counts will be entered direct1 in the Lotus 123 spread sheet pro ram 2140B or
) 2150B for the Plate Incorporation or l!treincubation method, respectively. ?he computer
printouts will be included in the study notebook.
18.7 Confirmatory Mutation Assay
Ifthe first Mutation Assay or a portion thereof roduces negative or equivocal results,
4 a confirmatory Mutation Assay will be performed. he test article treatment concentrations
may be altered based on the results obtained in the first Mutation Assay. On the other hand, if the results of the first Mutation Assay are clearly ositive, a confirmatory Mutation
E Assay may or may not be performed depending on the ponsor's instructions.
18.8 Criteria For a Valid Assay
The following criteria will be used as guidelines in determinin the acceptability of the
results. Since it IS impossible to. formulate critena
to every configuration
of data generated by the Mutation Assay, the Study
be responsible for the
ultimate decision regarding the acceptability of the results.
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11 ' SITEK RESEARCLHABORATORIES `
.
18.8.1 Solvent Control Cultures
The mean reversion frequency of the test article solvent control plates for each strain must fall within the range presented below:
Salmonella typhimurium
TA98 TA100 TA1535 TA1537
20 k15 100 lt70 20 215
15 +12
Escherichia WP2uvrA
15 + l o
18.8.2 Positive Controls
The results for the positive control cultures will be considered acceptable if the treated strains have mean reversion frequencies that are three times or greater than the mean reversion frequencies of the test article solvent control plates.
18.8.3 Tester Strain Characterization
P*-l-7- 1. All of the Salmonella himurium strains will be confirmed positive for histidine
dependence and the tschenc ia s rain for tryptophan dependence.
2. All of the Salmonella himurium strains will be confirmed positive for the rfa
mutation as evidenced by sensi IVI o crystal violet.
3. The R-factor strains, TA98 and.TA100, will be confirmed positive for the pKMlO1 1 plasmid as evidenced by ampicillin resistance.
4. The titer of the stock cultures ofFach strain yill indicate that the stock cultures contained approximately between 50x10 and 1.Ox10 bacteria per mL.
18.9 Evaluation of Test Results
Y 9 dJ The following criteria will be used as guidelines in evaluating the results of the
Mutation Assay for a negative, positive or equivocal response. Since it is impossible to write criteria that would appl to every confi uration of data enerated by the Mutation Assay, the Study Director wil be responsible or the ultimate ecision in the evaluation of
the results. The factors considered in making the decision will be discussed in the report.
18.9.1 Criteria for a Neqative Response
1 A response will be considered negative if all of the strains treated with the test article
have mean reversion frequencies that are less than v i c e that of the' mean reversion frequencies of the corres onding solvent control plates in TA98 and TAlOO and less than three times in TA1535, T 1537 and WP2uvrA, and there is no evidence of a dosedependent response.
I
Protocol No. 2140.4 031299
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I 1 SITEK RESEARCHLABORATORIES
18.9.2 Criteria for' a Positive Response A response will be considered positive-ifeither strain TA98 or TA100 has a dose that produces a mean reversion frequency-that is greater than or equal.to .two times the mean reversion fre uency of the corresponding solvent control plates or if either strain TAI 535, TA1537 or dP2uvrA has a dose roducing a three-fold or greater increase in the mean
P reversion frequency compared .to he s.olvent control frequen In additiqn the response 7 must be dose dependent or increasing concentrations of he test article must show
increasin mean reversion frequencies. In evaluating the results, consideration will be given to %e degree of toxicity exhibited by the dose causin the two-foldhhree-fold or
s reater increase in reversion frequency and the magnitude o the increase in reversion
flrequency. 18.9.3 Criteria for an Equivocal ResDonse
4 A response will be considered e uivocal if it-does not fulfill the criteria of either a
ne ative or a positive response and/or he Study Director does not consider the response to e! either positive or negative. If an equivocal response is obtained, a repeat assay may be performed at the Sponsor's request. 19.0 PROTOCOL AMENDMENTS AND DEVIATIONS
If chan es in the approved protocol are necessary, such changeswill be documented in the form ofprotocol amendments and rotocol deviations. Protocql amendments will be
Y generated when chan es in the protoco are made pnor to performing a study or part of
i? a study affected by t e changes. In such cases, a verbal agreement to make such
' changes will be made between the Study Director and the Sponsor. These chan es and
? the reasons for them wit1 be documented and attached to the protocol as an ad endum.
Protocol deviations will be generated when the procedures used to erform the study do
s not conform to the approved protocol. The Sponsor will be informe of these deviations,
and as soon as ractical, such changes along with their reasons or explanations will be
B documented an kept in the study notebook.
20.0 REPORT OF RESULTS 20.1 Content
I; The results of the stud will be submitted to the Spor;lsor in the form of a final re ort.
A draft report will be submi ed. before the final report is issued. The report will i n d d e , but not be limited to, the following:
1. Name and address of the testing facijity and the dates on which the study was initiated and completed, terminated or discontinued.
2. Objectives and procedures stated in the approved protocol, including any changes in the original protocol.
3. Methods used to analyze the data. 4. The test and control substances.
I
Protocol No. 2140.4 031299
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1 1 SITEK RESEARCHLABORATORIES
5. Description of the methods used to perform the study. 6. The data, mean plate counts, +/- SD, and any observations regarding toxicity and precipitate 7. The name and signature of the Study Director and the names of other technical personnel who participated in performing the study. 8. The location where the raw data and reports are to be stored. 9. A statement from the Quality Assurance Unit. 20.2 Chanqes and Corrections to the Final Report All changes to the final report will be in the form of report amendments which will include the reason(s) for the change, and these amendments will be added to the final report as an addendum. 21.O ARCHIVES The raw data electronic file confaining the data tables, documentation, protocol and final report of the sfud will be maintained in the SlTEK Research Laboratories Archives,
8 15235 Shad Grove oad, Suite 303, Rockville, Maryland, according to the terms and Y conditions o the study.
22.0 REFERENCES I.Arnes B. N., J. McCann and E. Yamasaki. Methods for detecfing carcino ens and
RIP muta ens with the Salmonella/ mammalian-microsome mutagenicity test. ut. Res.,
23 - 3113 -367, 1975.
2. Maron, D. and B. N.Ames. Revised methods for the Salmonella mutagenicity
test. Mut. Res., &:173-215, 1983. 3. Green, M. H. L., and W. J. Muriel. Mutagen testing usin trp+ reversion in
Escherichia coli. .in: B. J. Kilbey, et al. (eds.), Handbook of Mutagenici Test Procedures,
PP-65-94 , tlsevier North Holland Biomedical Press, Amsterdam, 4. Venitt, S., and J. M. Parry (eds.). Mutagenicity testing: A practical approach. IRL
Press, Oxford, England and Washmgton, D.C., 1984.
Protocol No. 2140.4 031299
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SITEK Study No. 0623-2140
PROTOCOL AMENDMENTS
Amendment Nos. :
1-2
Sponsor:
Primedica Redfield 100 E. Boone Street Redfield, AR 72132
Testing Facility:
SITEK Research Laboratories 15235 Shady Grove Road, Suite 303 Rockville, Maryland 20850
SITEK's Study No.:
0623-2140
Sponsor's Study No.:
132-008
Test Article ID:
Potassium Perfluorobutane Sulfonate
Protocol Title:
Evaluation of a Test Article in the Salmonella typhimurium/Escherichia coli Plate IncorporatiodPreincubation Mutation Assay in the Presence and Absence of Induced Rat Liver S-9
Amendment No. 1: Protocol Page 6, Section 12.1, Source, The Escherichia coli strain, WP2uvrA, that will be used in the assay was received from Ms. Judy Mayo of Pharmacia and Upjohn Co., Kalamazoo, Michigan.
Reason for Amendment No. 1: A new strain of Escherichia coli has been obtained and is
currently in use at SITEK Research Laboratories.
Amendment No. 2: Protocol Page 11, Section 18.6, Mutation Assay, The test article was
tested in the Mutation Assays at the following concentrations:
50,100,500,lo00 and 5000 pglplate.
Reason for Amendment No. 2: As stated in the protocol, the test article concentrations will be included in the form of an amendment, once determined.
i
65
Study Number: 0623-2140 Protocol Amendment Nos. 1 - 2 Page 2 of 2
SITEK Study NO. 0623-2140
APPROVAL:
Kamala J. Pant, M.S.
1 JohnSeng, Ph.u.
Sponsor's Study Coordinator
\ \ e 8,rn
Date
/Ill
Date
66
SITEK Study NO. 0623-2140
APPENDIX IV
HISTORICAL POSITIVE AND SOLVENTCONTROLDATA
67
-
I
SITEK Study NO. 0623-2140
I T E K RESEARCH LABORATORIES
t
HISTORICAL POSITIVE CONTROL DATA FOR SALMONELLA NPHIMURIUM/
ESCHERICHIA COLI MUTATION ASSAY
MUTANTS EXPRESSED IN IO6 SURVIVING CELLS
WITH AND WITHOUT ACTNATION
WITHOUT ACTIVATION
AVERAGE STANGARD DEVIATION (&) MINIMUM VALUE MAXIMUM VALUE N" WKH ACTIVATION
AVERAGE STANDARD DEVIATION (k) MINIMUM VALUE MAXIMUM VALUE N*
TA9 8 (2W
724 301 189 21 08 I80 TA9 8 (2W
81 1 31 9 151
1699 178
T A 1 00
(Na-w
578 174 272 I433 178 TA1 00
888 302 194 1618
1.
175
TA1535 (NaAz)
TA1537 (9AA)
134 141
22 846 I60
TA1535
(24
701 238 187 1410 144
TA1537
179
81
129
48
43
18
1336
349
156
157
E.coli
(MMS)
742 391 173 1528
34
E.coli
(a)
226 148
19
71 9 145
68
SlTEK Research Laboratories
HISTORICAL NEGATIVE CONTROL DATA FOR SALMONELLA TYPHIMURlUM/ ESCHERICHIA COLI PLATE INCORPORATION MUTATION ASSAY
MUTANTS EXPRESSED IN IO6 SURVIVING CELLS
AVERAGE
STANDARD DEVIATION (e)
MINIMUM VALUE
MAXIMUM VALUE
IN*
TAI
00
I
AVERAGE STANDARD DEVIATION ( 2 ) MINIMUM VALUE MAXIMUM VALUE
N*
ITA1535 I
AVERAGE STANDARD DEVIATION (&) MINIMUM VALUE MAXIMUM VALUE
1 N*
ITA1537
AVERAGE STANDARD DEVIATION (&)
MlNlMUM VALUE
MAXIMUM VALUE
I N*
[E. COLI
AVERAGE STANDARD DEVIATION (2) MINIMUM VALUE MAXIMUM VALUE N"
N* = Number of data points.
24.3 3.9
16
33
72
DMSO
89.5 24.1
23 144
73 DMSO
18.3 5.8 10 46 68
DMSO
9.5
- 3.1
3 17
66 DMSO
14.6
3.2 9
24
56
26.4 5.3 11 32
16
ACET
26.0
3.1 21
31
12
CORNOIL
101.6
36.4 26
174 17
ACFT
90.6 16.5
59 118
12
CORNOIL
25.8 3.5
17 33 57
H,O
103.9
22.4
66 159
57
H,O
24.7 5.9
17
35
14
SALINE
91 .I
18.8 70 I32 14
SALINE
19.3
4.6 12 33
16
ACET
16.7
3.8 11 23
12
CORNOIL
18.0
4.0
11
28 40
H,O
16.7
3.6 11 22 14 SALINE
9.6
2.7 6
16
ia
ACET
10.6
5.8
3
23
12
CORNOIL
9.1
2.5
5
17 41
H,O
8.0
2.8
4 13 14 SALINE
15.3 4.6 8 25
16
15.3 3.0
10 19 12
17.6 3.5 12
25 40
15.6
3.7
10 25 14
69
SITEK Study NO. 0623-2140
SITEK Research Laboratories
HISTORICAL NEGATIVE CONTROL DATA FOR SALMONELLA NPHlMURlUM/
ESCHERICHIA COLI PLATE INCORPORATION MUTATION ASSAY
MUTANTS EXPRESSED IN IO6 SURVIVING CELLS
WITH S-9 ACTIVATION
ITA98 I
DMSO
ACET CORNOIL
H,O
SALINE
I I N* [TA1535
AVERAGE
STANDARD DEVIATION (?I
MINIMUM VALUE MAXIMUM VALUE
I N*
ITA1537
73 DMSO
16.4 4.8 8 311 71
DMSO
16 ACE3
16.4 4.8 8 31 71
ACET
12 CORNOIL
70.8 3.0 15 25 12
CORNOIL
58
14
H,O SALINE
16.7 3.7 8 27 41
H,O
15.4 -
3.6 9
23 14
SALINE
AVERAGE STANDARD DEVIATION (2)
MINIMUM VALUE MAXIMUM VALUE N*
\E.COLI 1
10.2
4.2
3 28 70 DMSO
10.3
2.7 7
14 16 ACET
10.4 . 3.6
6 18 12 CORNOIL
9.8
7.1
2.8
2.2
6
3
17
I1
41
14
H,O SALINE
AVERAGE
STANDARD DEVlATlON (k) MINIMUM VALUE MAXIMUM VALUE
N"
N* = Number of data points.
15.2
3.4 0
25
60
16.9
3.4 8
25
60
17.2
5.2 9
26 12
17.5
4.2 10 30
43
16.0
3.5 10 23 14
70
SITEK Study NO. 0623-2140 APPENDIX V DOSING SOLUTION ANALYSIS
71
SITEK Study NO. 0623-2140
DOSE FORMULAION ANALYSIS OF PERFLUOROBUTANESULFONATE
IN DMSO BY HPLUMS
STUDY ID: A239.1 SPONSOR STUDY NO. 132-008
Southern Reseqrch Institute 2000 Ninth Avenue South P.O. Box 55537
Birmingham, AL 35255-5537
72
SITEK Study No. 0623-2140
Quality Assurance Statement
Final Report On
Dose Formulation Analysis of Perfluorobutane Sulfonate (PFBS) In DMSO A239.1
Sponsor Study No. 132-008
This study was performed using a method validated for accuracy, precision (repeatability), linearity, range and specificity. No audits were performed during the course of the study, either as. the analyses were performed, of the resulting data, or the report.
C-d%&L C.L. Marsh,'Manager, Quality AssuranceIQuality Control
7/3/& Date
73
SITEK Study NO. 0623-2140 SUMMARY A total of 12 formulated dose samples including blanks ranging in concentration from 0.5 to 50 mg/mL,wereanalyzed by analytical method BACG 3533 to determine the concentration of perfluorobutanesulfonate (PFBS) in the formulated mixture. All dose formulations were found to be within k 10% of the reported concentration.
I
J'
74
James D. Johnson, M.S., MBA Manager Bioanalytical Chemistry Group
Gregory S. Gorman, Ph.D. Staff Chemist Bioanalytical Chemistry Group
KEY PERSONNEL
SITEK Study NO. 0623-2140
75
SITEK Study NO. 0623-2140
1. OBJECTIVE The objective of this study was to determine the dose concentration of PFBS in the supplied dosing solutions received from the study director. 2. SAFETY All necessary procedures to ensure safety of the analysts were based on information contained in the Material Safety and Data Sheets (MSDS), provided by the study director for the test article used in this study.
3. Compliance This work was performed using a validated analytical method (BACG 3533), which along with the validation report is included in the appendix of this report. While this work was not audited in compliance with GLP regulations, it was performed in the spirit of the regulations using calibrated and validated instrumentation. 4. EXPERIMENTAL
)
4.1 Analytical Procedures The sample preparation and analysis procedures as described in the analytical method BACG 3533 were employed for all analyses. Each sample was allowed to warm to room temperature and was then vortexed well before an aliquotwas taken. Duplicated aliquots were taken from each sample and diluted as described in the method. Two standard curves was prepared over a concentration range of 500 to 10,000 ng/mL and analyzed , along with the samples. A single composite curve with a correlation coefficient of 0.9991 was used to quantitative the samples. No outliers in the calibration standards were noted and subsequently no standards were dropped from either of the calibration curves.
4.2 Results The results of the analysis are presented in the Table I at the end of the report.
5.0 Conclusion A total of 12 dose formulation samples ranging in concentration from 0.5 to 500 mg/mL were analyzed by BACG 3533. All samples were found to be within k 10 % of the reported concentration.
76
Table I Dose Formulation Analysis of PFBS in DMSO
I I I I I
I
I Measured I
Sample
Date Prepared Conc. % of Target
1 (mg/mL)* I
0 mg/mL B2
9/20/00
ND
NA
0 mg/mL B1
8/15/00
ND
NA
0.5 mg/MI B2
9/20/00
0.49
98.0
0.5 rng/rnL B1
8115/00
0.48
96.0
1 rng/mL B1
811 5/00
1.03
103
1 rng/mL B2
9/20/00
1.03
103
5 mg/mL B1
8/15/00
4.83
96.6
5 mg/mL B2
9/20/00
4.99
99.8
10 mg/mL B2
9/20/00
10.1
101
10 mg/mL B1
8115/00
10.0
100
50 mg/mL B2
9/20/00
49.7
99.4
50 mg/mL B1
8115/00
51.3
103
ND = not detected NA = not applicable
* = average of duplicate analysis
77
6.0 Approvals Staff Chemist Bioanalytical Chemistry Group
Bioanalytical Chemistry Group
SITEK Study No. 0623-2140
-773 - 0/
Date
Date
78
~~~~
-
SITEK Study NO. 0623-2140
METHOD VALIDATION REPORT
VALIDATION OF ANALYTICAL METHOD FOR DOSE FORMULATION ANALYSIS OF PERFLUOROBUTANE SULFONATE (PFBS) IN 1% CARBOXYMETHYL CELLULOSE (CMC)
STUDY ID: A098.1
Southern Research Institute 2000 Ninth Avenue South P.O. Box 55537
Birmingham, AL 35255-5537
79
SITEK Study NO. 0623-2140
SUMMARY Southern Research Institute has successfully validated for 3M an analytical method (BACG 3533) entitled "Dose Formulation Analysis of Perfluorobutane Sulfonate in 1% Carboxymethyl Cellulose by HPLC Mass Spectrometry". Calibration standards were prepared by spiking solvent solutions with known amounts of test article, PFBS, and internal standard, perfluoropentanoic acid. The calibration standards were prepared over a concentration range of 500 to 10,000 ng/mL and the carboxymethyl cellulose (CMC) concentration was adjusted to equal that of each diluted sample in each set. Additionally, three standard curves were prepared and analyzed which contained no CMC as controls. A total of 6 calibration curves were generated during the study which produced correlation coefficients ranging from 0.9992 to 0.9999.
80
James D. Johnson, M.S. Manager Bioanalytical Chemistry Group
Gregory S. Gorman, Ph.D.
Research Chemist I11 Bioanalytical Chemistry Group
Lester Williams, B.S. Associate Chemist I1 Bioanalytical Chemistry Group
. ..
KEY PERSONNEL
SITEK Study NO.0623-2140
81
-
SITEK Study NO. 0623-2140
I
1. OBJECTIVE
The objective of this study was to provide a validated analytical method for the determination of PFBS concentration in dose formulation samples containing 1% CMC.
2. SAFETY
All necessary procedures to ensure safety of the analysts were based on information contained in the Material Safety and Data Sheets (MSDS), provided by 3M for the test article used in this study.
3. EXPERIMENTAL
3.1 Analytical Procedures
The sample preparation and analysis procedures as described in the analytical method BACG 3533 were employed for all analyses. For the preparation of the calibration standards, a known volume of a solvent (e.g., 1 mL) containing CMC was spiked with a known amount of test article and internal standard and vortexed briefly to ensure mixing. Each formulation sample was diluted to a final concentration of 3200 ng/mL and an aliquot of this was placed into autosampler vials for analysis.
I.
3.2 Method Validation Validation for BACG 3533 "Dose Formulation Analysis of Perfluorobutane Sulfonate in 1% Carboxymethyl Cellulose by HPLC Mass Spectrometry" consisted of analyzing three standard curves containing CMC at the concentration present in the diluted 4 m g l d dose formulation samples (0.001%) and three curves prepared without CMC. The concentration range for both sets ranged from 500 to 10,000 ng/mL. A total of 7 calibration levels in each curve containing CMC and 6 in each of the three without CMC were evaluated. The summaries are given below:
Calibration Results 0% CMC
A total of three standard curves each containing 6 individual standards encompassing a range of 500 to 10,000 ng/mL were analyzed in duplicate. The correlation coefficient for the composite curve comprising a total of 36 data points was found to be 0.9992. No data points were dropped from the analysis. A statistical summary for the composite curve is shown below:
82
SITEK Study NO. 0623-2140
STAMARD COMPOSITE CURVE PFBS (0% CMC)
# of Standards Mean% Accur. Std. Deviation
6 97.71 19.47
6 102.9 55.85
6 99.73 110.6
6 99.52 187.8
6 100.1 288.2
6 100.2 356.4
Calibration Results (CMC = 0.001%)
Three standards curves containing a total of 21 single standards encompassing a range of 500 to 10,000 ng/mL were analyzed. The correlation coefficient for the calibration curve was found to be 0.9997. No data points were dropped from the analysis. A statistical summary for the composite Furve is shown below:
STANDARD COMPOSITE CURVE PFBS (0.001% CMC)
# of Standards Mean % Accur. Std. Deviation
3 98.1 1 18.19
3 101.5 17.72
3 101 48.33
3 101 49.67
3 98.44 81.61
3 99.31 76.38
3 100.7 203.4
3.3 Calculations Calculations were performed using TurboQuan (Version 1.0). The amount of analyte in the
diluted dose formulation samples (ng/mL) was back calculated using a calibration curve
generated from a set of calibration standards containing the equivalent amount of CMC as in the
diluted samples. The calibration curve was generated by a regression analysis to determine the best fit curve (e.g., linear, quadratic etc.) and amount of weighting. A quadratic fit with 1/X weighting was determined to be the best fit :
y = a x 2 + bx + c
where:
y = Peak area response of test article
x = Concentration of the test article in standards.
a, b, c = Constants derived from the regression analysis.
83
SITEK Study NO. 0623-2140
4.0 Conclusion
A quantitative method (BAGC 3533) has been developed and validated for the determination of PFBS in dose formulation solutions containing 1% CMC. Quantitation for this method is based on internal standard which produces standard curves with a correlation coefficients of 0.9992 or greater over a concentration range of 500 to 10,000 ng/mL.
5.0 Approvals
Gieg6x-y S. Gorman, Ph.D. Staff Chemist Bioanalytical Chemistry Group
't
c/ Manager
Bioanalytical Chemistry Group
Date
'.
Date
84
~~
~
-
SITEK Study NO.0623-2140
Page 1 of 8
ANALYTICAL METHOD
Method No.: BACG-3533
Title:
Dose Formulation Analysis of Perfluorobutane Sulfonate in 1%' Carboxymethyl Cellulose by HPLC/Mass Spectrometry (HPLCIMS)
1.0
PFUNCIPLE
i 2.0
Dose formulation samples of perfluorobutane sulfonate (PFBS) in 1 % carboxymethyl cellulose (CMC) are diluted down to 3200 ng/mL and analyzed by HPLUMS. Quantitation is b&ed on an internal standard using back calculated values from a calibration curve encompassing a concentration range from 500 to 10,000nglmL and containing the same concentration of CMC as the dose formulations in the diluted form.
-
REAGENTS
SOLUTIONS
The listed reagents or their equivalents may be used.
2.1
Neat Reagents
2.1.1 Water, deionized and organic free (from in-house purification system; e.g., Ingalls 210N)
2.1.2 Methanol, HPLC grade
2.1.3 Perfluorobutanesulfonate (analyte), as provided by the client
2.1.4 Perfluoropentanoic acid (internal standa-rd), 97%
2.1.5 Ammonium acetate, HPLC grade
2.2
Prepared Solutio11s
Appropriate changes in the solutions may be made at the discretion of the analyst
2.2.1 5 mM Ammonium acetate in organic free water
85
SITEK Study NO. 0623-2140
Page 2 of 8
ANALYTICAL METHOD
Method No.: BACG-3533
Title:
Dose Formulation Analysis of Perfluorobutane Sulfonate in 1% Carboxymethyl Cellulose by HPLC/Mass Spectrometry (HPLC/MS)
2.2.1.1
For example, to prepare 4 liters, measure out ammonium acetate (e.g., 1.542 g) and
add in organic-free water (e.g., 4 L). Mix well and filter through HPLC mobile phase
filtration apparatus.
3.0
3.1
)
3.2 3.3 3.4 3.5 3.7 3.8 3.9 3.10 3.11 3.12
INSTRUMENTS, MATERIALS, AND APPARATUS
The following or their equivalents maybe used.
HPLC pump(s), autosampler, and single quadrupole mass spectrometer Autosampler vials with inserts Vortex mixers (e.g., touch mixer and IKA-Vibrax @ platform mixer) HPLC mobile phase filtration apparatus Filters for HPLC mobile phase filtration apparatus (e.g., Nylon-66, 0.20 ,urn) Analytical balance Volumetric flasks (e.g., 10 and 25 mL)
Disposable Pasteur pipets Micropipettor(s) with tips Culture tubes with teflon-lined caps Assorted glassware and syringes
86
SITEK Study NO. 0623-2140
Page 3 of 8
ANALYTICAL METHOD
Method No.: BACG-3533
Title:
Dose Formulation Analysis of Perfluorobutane Sulfonate in 1% Carboxymethyl Cellulose by HPLC/Mass Spectrometry (HPLC/MS)
4.0
PREPARATION OF STOCKS AND W O m G STOCKS
Appropriate changes in the concentrations of the solutions may be made at the discretion of the analyst. Actual dilutions will be documented on the preparation sheets.
, \
4.1
i
Main
Stock
Solution
of
PFBS
- 1000
p
g
/
d
4.1.1 Prepare an - 1000 pg/mL solution of PFBS in mobile phase (e.g., accurately weigh
about 10 mg PFBS into a 10-mL volumetric flask). Add mobile phase to dissolve.
Dilute to the mark. Alternatively, weigh the compound into an appropriate vessel
(e.g., culture tube) and add 10 mL of mobile phase. Mix well. Transfer the solution
to a clean vessel if desired.
-
4.2
Spiking Stock Solution of PFBS -50 pg/mL
4.2.1
- Prepare an 50 p g / d solution of PFBS in mobile phase (e.g., measure about 500 pL - of lo00 p g / d PFBS into a 10-mL volumetric flask). Add mobile phase to
dissolve. Dilute to the mark. Alternatively, weigh the compound into an appropriate vessel (e.g., culture tube) and add 10 mL of mobile phase. Mix well. Transfer the
solution to a clean vessel if desired.
4.3
Stock Solution of Internal Standard (PFPA), -200 pg/mL
4.3.1
Prepare an -200 pg/mL solution of PFPA in deionized organic-free water (e.g.,
accurately weigh about 10 mg into a 50-mL volumetric flask). Add deionized organic-
free water to dissolve and dilute to the mark with deionized organic-free water.
Alternatively, weigh the compound into a an appropriate vessel (e.g., culture tube) and
add 50 mL of deionized organic-free water. Mix well. Transfer the solution to a clean
vessel if desired.
87
SITEK Study NO. 0623-2140
Page 4 of 8
ANALYTICAL METHOD
Method No.: BACG-3533
Title:
Dose Formulation Analysis of Perfluorobutane Sulfonate in 1% Carboxymethyl
Cellulose by HPLC/Mass Spectrometry (HPLCIMS)
4.3
4.3.1
Working Stock Solutions of PFBS
To prepare working stock solutions, make the proper dilutions as shown in the following table. Prepare in 10-mL volumetric flasks or other appropriate glassware. If desired a modified dilution scheme can be used and documented in the study records.
Working Stock Level
Volume of
)
(WSL)
Internal
Volume of PFBS Volume of mobile
Approximate Concentration Standard spiking solution
phase (PL)
(ng/m.L)
W)
(PL)
500
200
10
790
1000
200
20
780
3000
200
60
740
3200
200
64
736
5000
200
100
700
8000
200
160
640
10000
200 -
200
600
Note: The mobile phase used for each standard curve should contain the same concentration of
CMC as the samples. For example, the dilution factor of a 4 mg/mL sample is 1000 (prior to addition of IS). The mobile phase for a 4 m g / d sample prepared in 1% CMC should contain
1/1000% CMC to account for the dilution.
5.0
PREPARATION OF SPIKED STANDARDS AND BLANKS
Appropriate changes in the concentrations of the solutions may be made at the discretion of the analyst.
88
SITEK Study NO.0623-2140
Page 5 of 8
ANALYTICAL METHOD
Method No. : BACG-3533
Title:
Dose Formulation Analysis of Perfluorobutane Sulfonate in 1% Carboxymethyl Cellulose by HPLC/Mass Spectrometry (HPLUMS)
5.1
Multiple (e.g., about three) sets of standards blanks (blank + IS) are analyzed with
each set of unknown samples. A double blank (blank-IS) may also be analyzed if
desired. Standards may be prepared as shown in the table in 4.3.1.
6.0
PREPARATION OF SAMPLES
6.1
All samples are to be diluted to approximately the middle of the curve (e.g. 3200
ng/mL). Dilutions are to be made with mobile phase. For example, for a 4 mg/mL
sample, take 1 mL and dilute with mobile phase in a 10 mL volumetric flask. Then
take 100 pL of the diluted sample and dilute that with mobile phase in a 10 mL
volumetric flask. Take 800 pL of the second dilution, place in an autosampler vial,
add 200 pL of IS, mix, and analyze.
7.0
ANALYSIS BY HIGH PERFORMANCE LIQUID CHROMATOGRAPHY
MASS SPECTROMETRYMSS SPECTROMETRY ("LCMSMS)
7.1 7.1.1
- Conditions are to be optimized if necessary.
T.CC o. . w
Analytical Column:
none
Guard Column: Elution Flow rate:
Injection volume: Mobile phase:
Fluofix 120E 10 mm x 2 mm 1000 pL/min.
5 PL
A: 5mM ammonium acetate buffer B: methanol
Elution Profile: Temperature:
Isocratic 30% A : 70% B
Ambient
7.1.2
PE Sciex API 150EX Single Quadrupole Mass Spectrometer Conditions
89
SITEK Study NO. 0623-2140
Page 6 of 8
ANALYTICAL Ml3THOD
Method No.: BACG-3533
Title:
Dose Formulation Analysis of Perfluorobutane Sulfonate in 1% Carboxymethyl
Cellulose by HPLC/Mass Spectrometry (HPLUMS)
Software: PE Sciex TurboQuan
Turboion Spray Source Note: Values listed under "MS/MS Acquisition Conditions" override parameters in this table.
Auxiliary Gas :
Air (e.g., Grade 0.1) at 85 pounds per square inch
Parameter
Value
IS
-5Ooo
NC
0
TEM
450
OR
-25
RNG
-170
QO
10
IQ 1
11
ST
16
RO 1
11
DF
300
CEM
2400
NEB
15
CUR
8
CAD
0
QPE
0
POL
0
VCM
I
IPE
0 0
90
SITEK Study NO. 0623-2140
ANALYTICAL METHOD
Page 7 of 8
Method No. : BACG-3533
Title:
Dose Formulation Analysis of Perfluorobutane Sulfonate in 1% Carboxymethyl Cellulose by HPLC/Mass Spectrometry (HPLC/MS)
-Masses requested:
PFBS:
299.2
200
8.0
1
8.1
8.2
i
I
200
CALCULATIONS
At the end of the analytical run, review each chromatogram to ensure the retention time, peak shape, and peak height and peak area determination of the test article and the IS are acceptable. The data may be smoothed as appropriate. For quantitation, use the ion profiles at the following mass-to-charge ratios:
Analvte
PFBS PFPA
JIldkdk
299.2 218.9
Plot the peak area response of PFBS divided by the peak area response of the IS (PFPA) from all standards versus the concentration of the test article in the standards.
Alternatively, the peak heights maybe used instead of peak areas. Obtain the best curve fit of the data (e.g., quadratic fit weighted with Uconcentration of the test article or a quadratic fit). Note: The best curve fit may be dependent on.the range of the standard curve and it may be necessary to have more than one standard curve for various concentration ranges using the following:
y = axz+ bx + c
where
y = Peak height response of PFBS divided by peak height response of the IS (PFPA) in standards.
x = Concentration of the PFBS in standards.
91
~~
-
SITEK Study NO. 0623-2140
Page 8 of 8
ANALYTICAL METHOD
Method No. : BACG-3533
Title:
Dose Formulation Analysis of Perfluorobutane Sulfona t in 1 % C rboxymethy1 Cellulose by HPLC/Mass Spectrometry (HPLCIMS)
a, b, c = Constants derived from the regression analysis.
8.3 Using the standard curve, calculate the level of PFBS in each unknown sample. Correct
the results of samples for any dilutions.
9.0 ACCEPTANCE AND REJECTION CRITERIA
-
9.1 Refer to SOP SRI 91-3 for acceptance/rejection criteria except acceptable accuracy for
I
standards is 80-120% of theoretical.
I'
10.0 REPORTING
10.1 Results of all analyses are tabulated, and the raw data, original chromatograms, and reports are to be filed in the appropriate study file.
-
Authors:
Gre&&.Gorman,
-
743-JrnO
Ph.D., Research Chemist III Date
7-17- 200.
Date
I
i
92