Document GmkEO0M9G4pJ9zZ72NYbgqM74
FILE NAME Dental Asbestos DEN
DATE 1980
DOC DEN104
DOCUMENT DESCRIPTION Journal Article General Dentistry - Asbestos A Subtle Carcinogen in the Dental Lab
Asbestos a subtle carcinogen
in the dental laboratory
Duane E. Cutright DDS PhD Eugene F. Huget DDS MS John M. Brady DDS MS
PLAINTIFF'S
exhibtsicker.com
exhibitsticker.com
exhibitsticker.com
EXHIBIT exhibitsticker.com exhibitsticker.com
exhibitsticker.com
exhibitsticker.com exhibitsticker.com
exhibitsticker.com
exhibitsticker.com
5400exhibtsicker.com exhibitsticker.com
Risks encountered in dental practice
have become the foci for a number of
studies Dangers associated with the inhalation of particulate matter bac-
teria viruses enamel dentin calculus
and amalgam from microbial aerosols produced during the use of speed rotary instruments have been addressed Investigations also
have been conducted to establish and
to define acceptable limits for levels of mercury vaporand nitrous oxidein the operating room
Recently there has been concern
about asbestos fibers that emanate
from the powder component of some periodontal dressings as well as from liners for casting rings and crucibles This study was conducted to sample and to characterize particulate
debris encountered in the use of asbes-
tos in the dental laboratory
Material and methods
A " segment of " wide ring liner was
torn a from roll of asbestos by each of
two laboratory workers Particulate matter remaining on the thumbs and index fingers of the test subjects was removed with the use of acetate tape
Additionally the sites from which debris had been removed were resampled after the laboratory workers washed
and dried their hands
Two " strips of the asbestos were heated in a burnout furnace at 1,300
for 45 minutes The strips were cooled to room temperature in open air and torn by two volunteers Sampling of particulate matter from the thumbs and index fingers of these individuals was accomplished as previously described
In second approach samples of debris were collected on acetate tape from a bench top on which 20 phosphate-
bound investment molds had been
broken from asbestos metal cast-
ing rings Additional particles were removed from a wall against which the
bench was located from the muffle of a
furnace from a casting machine and
from a drawer in a which roll of ring-
liner had been stored
The sampling tapes were sealed to
aluminum stubs The debris
taining side of each tape was coated with gold and palladium or carbon and examined with the use of a scanning electron microscope Photomicrographs of the collected matter were analyzed for determination of shape size and distribution of particulate
components Elemental constituents of selected carbon particles were determined by dispersive
ray microanalysis
Results
Scanning electron microscopic examination of the material collected from thumbs and index fingers showed aggregates of relatively straight parallel fibers and single randomly dispersed fibers Fig 1 The fibers though fragmented did not have axial cleavage Diameters of the linear particles ranged from 0.10 to 1.0...mGenerally fiber length exceeded 200...m Morphologic differences between the particles that were broken from unheated and heated strips of the test ma-
terial were not detected
Dispersive ray analysis of selected particles showed that magnesium and silicon were the predominant con-
stituents of the test material However small amounts of iron were also detected as well as sulfur and calcium
Fig 2 The approximate elemental
composition of the fiber was as follows magnesium 45 silicon 40 sulfur % calcium % and iron % Heat-
Cd
Fig 1. Photo
initial magnifica x5,000 D. Pa
ing at a con temperature
composition Fibers wer
ticulate matte
of washed h
spheroidal
found in one
range of e
titanium sili
calcium and
Samples of
laboratory
laboratory be fragmented s
Particles of si
recovered fro
from the Results of an
filamentous magnesium magnesium
46 GENERAL DENTISTRY 1980
stituents of cicles were
lispersive
croscopic
| collected rs showed
ght paralomly dis-
e fibers have axial
near parti-
m Gener-
1 200...m
tween the from une test ma-
of selected esium and
ant conHowever e also ded calcium
elemental
as follows
% sulfur % Heat-
Fig 1. Photomicrographs of particulate matter removed from thumbs and index fingers of laboratory workers A. Aggregates from dry unheated ring liner initial magnification 50 B. Aggregates from heated ring liner initial magnification 50 C. Particles of dry unheated ring liner initial magnification
5,000 D. Particles of heated ring liner initial magnification 5,000
ing at a conventional mold burnout
temperature did not alter the elemental
composition of the woven fibers
Fibers were not detected in the par-
ticulate matter removed from the digits
of washed hands Occasional small
spheroidal and plate particles found in one sample exhibited a broad range of elemental constituents
titanium silicon chlorine potassium calcium and iron
Samples of debris removed from the laboratory bench and wall contained
fragmented slender particles Fig 3
Particles of similar configuration were recovered from the casting machine and from the storage drawer Fig 4 Results of analysis showed that these filamentous particles were composed
of
magnesium silicon sulfur calcium
and iron in the same relative concentra-
tion as found on the fingertips Parti-
cles that were detected within the muf-
fle of the furnace were not fibrous the ratio of length to diameter was less than 3 to 1. Constituents of these particles included silicon phosphorous calcium and sulfur
Discussion
Asbestos is a term used to identify
any one of several minerals that can be crushed into fibers However a par-
ticular mineral substance chrysolite is the principle source of commercial asbestos Chrysolite is a hydrated silicate of magnesium its approximate composition is 37 to 44 silicon
dioxide 39 to 44 magnesium oxide % to 15 water and % to % iron oxide Analytical data indi-
cated that the fibrous material
examined in this study was chrysolite The compositional features of the nonfibrous particles removed from the fingers of washed hands and from the
furnace muffle inferred the presence
of debris from refractory investment
materials
The occupational risk associated
with asbestos exposure has been well documented in several studies In
man exposure to asbestos dust is associated with an increased incidence of
tumors of the lung,,7and with pleural and peritoneal mesothelioma Asbestos fibers are subtle carcinogens that do not produce an obvious exposure-
ee NN
GENERAL DENTISTRY 1980 47
Fig 2. Dispersive ray analysis of single fiber component arrow of asbestos casting ring liner
response relationship Usually a long latency precedes the onset of fibrogenic or carcinogenic activity and the effects of repeated exposures over long periods are cumulative.19
The threshold limit value TLV
below which asbestos would not ad-
versely affect the health of man is not known The current eight timeweighted TLV for asbestos is two fibers per cubic centimeter of air20 however
this limit has not been evaluated with
regard to its effectiveness in the pre-
vention of asbestos disease
Additionally the mechanisms by which fibrous materials produce malignant disease are uncertain It has been shown however that the degree of carcinogenicity is related to fiber size rather than to composition.21 Data
from animal experiments indicate that durable fibers less than 3...min diame-
ter and more than 20...min length present the greatest hazard and the fibers described in this report fall within this
range of size The actual risk incurred in the use of
producing asbestos in dental lab-
oratories is unknown However the
potential for inhalation or ingestion of asbestos particles by dental laboratory workers appears to be greater than that for members of the general population The need for rigorous standards of personal and laboratory hygiene in the handling of asbestos is obvious For example if hands are washed as shown in this study the material is effectively removed from the fingertips Since it has been shown that cigarette
smoking increases the risk of lung
cancer in asbestos workers smoking
should be discouraged especially
within the working area In view of the results reported her
and in conformity with correct occupa tional health practices the following protective measures are suggested
dental clinics
1. All office and laboratory per-
sonnel should be informed of the
potential danger of asbestos 2. The storage and use of asbes
tos should be confined to a small area of the laboratory or to a small isolated working chamber
3. Operatories and other offices
should be isolated from the dental
laboratory 4. Face masks and surgical gloves
should be worn when asbestos or
containing debris is han
dled
5. Cutting instead of tearing as bestos should be encouraged
6. Smoking or eating should be
prevented in the dental laboratory
7. Transmission of asbestos waste by sewage lines and all
exhaust systems should be pre
vented to preclude discharge within
the community environment
Summary
Particles of debris emanating from containing dental laborato
material were studied with the sea
ning electron microscope and X-
FigFig 3.
of
Photomicrog
debris initial ma
debrisdebris
initial magnifica
48 CUTRIGHT CARCINOGEN
;
Le risk of lung rkers smoking
ed especially
a.22 a.22
s reported here correct occupa-
the following e suggested in
boratory per-
ormed of the
bestos
use of asbesed to a small or to a small
ber
other offices m the dental
rgical gloves
asbestos or bris is han-
f tearing asraged
g should be
| laboratory
f asbestos es and air ld be premarge within ment
ating from an
al laboratory
th the scan-
e and ray
magnification Fig 3. Photomicrographs of debris from laboratory bench top and laboratory wall A. field of bench top debris initial
x50 B. field
of wall debris initial magnification x50 C. Linear component of bench top debris initial magnification 5,000 D. Bundle of linear components of wall
debris initial magnification x5,000
GENERAL DENTISTRY 1980 49
microprobe The dimensions and composition of these particles suggest their potential as subtle carcinogens With almost daily use of producing asbestos in the dental laboratory the improper handling of this substance
could be hazardous to the health of
dental personnel It is recommended that high standards of personal and laboratory hygiene be used in the handling of asbestos
Dr. Cutright is a commander with the U.S. Army Institute of Dental Research Dr. Huget is
chieoff the Division of Dental Materials and Dr.
Brady is chief of the Department of Biophysics at the U.S. Army Institute of Dental Research Walter Reed Medical Center Washington DC
Acknowledgement
The views expressed herein are those of the authors and do not necessarily reflect the views of the United States Army or the Department of Defense
Ceramugold Investment Whip Corp. Louisville Ken-
tucky
Scanning Electron Microscope model 1000 Advanced Metals Research Corp. Burlington Massachusetts Energy Energy Dispersive Ray Analyzer model 707A with EDIT II
Software EDAX International Prairie View Illinois
References
1. Travaglini E.A. Larato D.C. and Martin A. Dissemination of organism droplets by speed dental drills ] Pros-
thet Dent 132 1966 2. Micik R.E. Miller R.L. Mazzarella
M.A. and Ryge G. Studies on dental pro-
Fig 4. Fragmented debris from laboratory asbestos in storage drawer
cedures J Dent Res 48:49 1969 3. Battistone G.C. Hefferren J.J. Miller
R.A. and Cutright D.E. Mercury its rela-
tion to the dentist's health and dental prac-
tice characteristics JADA 1182 1976 4. Mantyla D.G. and Wright O.D. Mercury
toxicity in the dental office a neglected problem JADA 1189 1976 5. Eames W.B. Gaspar J.D. and Mohler H.C. The mercury enigma in dentistry JADA 1199 1976 6. Linde H.W. and Bruce D.L. Occupational exposure of anesthetists to halothane nitrous oxide and radiation Anesthesiology
363 1969
7. Johnson E.G. Harmful pollution by anesthetic gases Lancet 824 1972
8. Nikki P. Are anesthetic gases harmful to operating room staff Ann Clin Res 247
1972
9. Burnett G. Substitute for asbestos in casting rings Brit Dent J 171 1976
10. Council on Dental Therapeutics and Council on Dental Materials and Devices Hazards of asbestos in dentistry JADA 777 1976
11. Berg D. Inorganic insulating materials in Standard Handbook for Electrical Engineers
10th ed New York McGraw Book Co.
1968 p 355
12. 12. Enterline P.E. Type of asbestos and respiratory cancer in the asbestos industry Arch
Environ Health 312 1973
13. Selikoff I.J. and Nicholson W.J. Asbestos air pollution Arch Environ Health 25
1972
14. Weill H. et al Radiographic and physiologic patterns among workers engaged in manufacture of asbestos cement products ] Occupational Med 248 1973
15. Doll R. Mortality from lung cancer in asbestos workers Br J Industr Med 12:81 1955
16. Cordova J.F. Tesluk H. and Knudtson K.P. Asbestosis and carcinoma of the lung Cancer 1181 1962
17. Huper W.C. Occupational and nonoccupational exposure to asbestos Ann NY Acad
Sci 184 1965
18. Stanton M.F. and Wrench C. Mechanisms
of mesothelioma induction with asbestos and fibrous glass J Natl Cancer Inst 797
1972
19. Thomson J.C. Asbestos and the urban dwel-
ler Ann NY Acad Sci 132 1965
20. Nicholson W.J. Asbestos TLV approach Ann NY Acad Sci 152 1976
21. Stanton M.F. Fiber carcinogenesis is asbes tos the only hazard J Natl Cancer Inst
633 1974
22. Berry G. Combined effect of asbestos exposure and smoking on mortality from lung cancer in factory workers Lancet 476
1972
Ellman Rectan
A new inexpe for splinting n avulsed teeth in cedure The N eliminates the i
pins or paper consuming in
roughening or Thes
retention Thes mques often loosen break t
Jack rigidity an Splint ma available The designed to res
force The U sides of the bar
lock preventing displacement
also act as valvo pressure in the
preparation Wi Splint and composite fillin the patient spli
low fee in
procedure Ell 12 cut in
of 3 different ga
slightly bendah
Each Kit conta 10 teeth The
cents per splin
Ellman Dental
A Major Adv
of Calcium H
This new impi syringe contai effective pulpa for vital pulp es The easiest to CAL is de paste in needle applica facilitates pinin thin film excellent for
amounts of ca
50 CUTRIGHT CARCINOGEN