Document da7Kqmxg6j3GJOj1eMd2Brogq
TOXICOLOGY AND APPLIED PHARMACOLOGY 36. 339-352 (1976)
Fate of [MC]Vinyl Chloride after Single Oral Administration in Rats1
P. G. Watanabe. G. R. McGowan, and P. J. Gehring
Toxicology Research Laboratory, and Analytical Laboratory. The Dow Chemical Company, Midland. Michigan 48640
Received Septemoer 9. 1975; accepted January 9, 1976
Fate oi [`*C]Vinvi Chloride alter Single Oral Administration in Rats. Watanabe. P. G.. McGowan. G. R.. and Gehring. P. J. (1976). Toxicol. Appl. Pharmacol. 36, 339-352. Male rats were given single oral doses of 0.05. 1. and 100 mg./kg of [MCj\inyi chloride (VC), and the routes and rates of elimination of **C activity followed for 72 hr. Following 0.05 and 1 mg/kg, excretion in the urine as nonvolatile metabolites and as iAC01 in expired air accounted for 59-68' and 9-13%, respectively of the administered dose. Only 1-2% of the dose was expired by the lungs as VC. Conversely, after 100 mg/kg, 67% of the dose was eliminated by the lungs as VC, while urinary nonvolatile metabolites and l*C02 comprised 11 and 3%, respectively. Pulmonary elimination after 100 mg/kg showed an apparent biphasic clearance with half-times Uul) of 14.4 and 40.8 min for the respec tive fast and slow phases. Following 0.05 and 1 mg/kg the pulmonary clearance of VC was monopnasic with tUi of 53.3 and 57.8 min. The percentage of the dose remaining in the carcass after 72 hr was 10, 11, and 2% for the 0.05-. 1- and 100-mg/kg doses, respectively. The urinary radio activity was separated by high pressure liquid chromatography into three major metabolites. Two of the three major urinary metabolites have been identified as A-acetyl-5-(2-hy0roxyethyl)-cvsteine and thiodiglycolic acid by gas chromatograpny-mass spectrometry. The proportions of the urinary metabolites were not influenced by the dose. The fate of VC following an oral dose between 1 and 100 mg/kg was clearly dose-dependent. Con sistent with our previous studies on the fate of VC following inhalation ex posure in rats, the metabolism of VC appears to be a saturable process.
The hazard of industrial exposure to vinyl chloride (VO during the production of polyvinyl chloride and other plastics has received considerable attention. Maltoni and
Lefemine (1974) demonstrated the carcinogenic potential of VC in rats exposed daily by inhalation to concentrations ranging from 50-10.000 ppm. Subsequent epidemio logic data obtained from industrial workers with long-term exposure to high concentra tions of VC demonstrated an association between exposure and various hepatic
abnormalities including induction of angiosarcoma (Creech and Johnson. 1974). The fate of inhaled VC has been studied previously in rats (Hefner et al.. 1975).
Although some aspects of the fate of inhaled VC remain to be elucidated, the data
indicated that in rats exposed to 50 ppm for 1 hr the inhaled VC was metabolized to
polar products which were excreted predominantly in the urine. Using kinetic para
meters and inhibitors of drug metabolism, additional evidence indicated that the fate
1 This study was funded by the companies supporting the vinyl chloride projects being administered
by the Manufacturing Chemists Association. Washington, D.C.
Copyright r') 1976 bv Academic Press, Inc, All rights ot reoroduciion in anv torm reser\ed. Primed m Great Britain
'39
R&S162604
340 WATANABE. MCGOWAN AND GEHRING
of inhaled VC was concentration-dependent and that at least two metabolic pathways were involved in its metabolism. Consideration of these data led to the speculation that the carcinogenic activity of VC may be mediated through formation of alkylating meta bolites such as chloroacetaldehyae and chioroethvlene oxide. Even more important is the fact that the production of carcinogenic metabolites may increase disproportionately with the extent of exposure: or conversely, the capacity to detoxify alkylating metabol ites may decrease disproportionately with the extent of exposure. Resolution of these possibilities is critical in assessing the hazard of exposure to low levels of VC.
The objective of this study was to determine the fate of orally administered VC in rats at various dose levels in order to provide data useful in evaluating the hazard of ingested VC.
METHODS
Compound. [1.2-'4Cj Viny i chior:ue ([14C] VC) was synthesized directly from [ 1,2-14C]1.2-dichloroethane (lot no. 819-021. 3.4 mCi.'mmol. New England Nuclear, Corp.) by the method of Wagner and Mueideri 1975). The radiochemical purity of a representative sample of [l4C]VC, from this synthesis. has been reported to be95-96% pure(Wagner et ai.. 1975). The primary i4C-containing contaminant (4-5%) in the (14C]VC prepara tion was [14C]acetvlene. Nonlabeied VC (Matheson Gas Products) of 99.9% minimum purity was mixed with the I4C material to obtain the desired specific activity.
Preparation ofdose. The [14C] VC was synthesized immediately prior to use. Typically 20 ml of the [1AC]VC, helium mixture (approx. 2.6 mClmmol) was bubbled directly into 15 g of USP corn oil in a seaied septum vial. An appropriate quantity of nonlabeied VC was then bubbled into the corn oil to obtain the desired concentration. One micro liter of the corn oil-dosing solution was subjected to gas chromatography and the final concentration of VC in the corn oil was determined by comparison to standard gas samples.
The VC was analyzed by gas chromatography (Hewlett-Packard Model 5750) on a Porapak Q column (80-100 mesh. 6 ft x \ in. stainless steel) with a carrier gas (He) flow rate of 15 mbmin. The flame ionization detector, injection and column tempera tures were 280. 250. and 180=C. respectively.
The radioactivity of the dosing solution was determined by placing aliquots (0.0500.100 g) into prerilled scintillation vials containing 20 ml scintillant. Concifluor (Mallinckrodt Chemical Worksl. 2-methoxyethanol:toluene. 6:11:83. The radio activity was determined in a Nuclear Chicago Mark II liquid scintillation spectrometer (Searle. Inc.). External standard channel ratios were used to determine counting efficien cy and the counts per minute icpm) were converted to disintegrations pier minute (dpm) with a standard quencn curve. The specific activities for the0.05-. 1- and 100-mg: kg dose solutions were 187.36. 20.50, and 0.18 pCi mg VC. respectively. The VC-corn oil solution was administered by savage with a glass syringe and stainless steel dosing needle in a volume not exceeding 5 ml kg.
Animals and apparatus. Male Sprague-Dawlev rats weighing from 1 SO--224 g pur chased from SDartan Research were used throughout the studies. All animals were fasted overnignt, anu the VC was administered between 8 and 10 am the following morning.
R&S162605
- XTE OF [;iC] VINYL CHLORIDE IN RATS
541
The rats were houseo in glass Roth-type metabolism chambers designed Tor the separate collection of urine, feces, and expired air. Room air was drawn by vacuum through the chambers at 400-500 ml: min. The air leaving the chamber was passed through a series of traps to collect the expired [1AC] VC and 14CO:.
The air leaving the chamber was hrst passed through a glass tube containing about 40 g of Drierite (W. A. Hammona Drierite Co.) to remove moisture. Subsequent transit througn a senes of two coid finger traps containing 50 ml of toluene. 2-methoxyethanoi (80:20. immersed in Dry Ice baths) and a single trap containing 120 ml of 5 m ethanolamine in 2-metnoxyethanoi (room temperature) enabled the collection of [1AC]VC and UC02 resDectivelv.
Experimental procedure. The animals were placed in the modified metabolism cages immediately after dosing. The VC traps were changed at 30-min intervals for the first 4 hr. Two subsequent changes at 4-hr intervals (8 and 12 hr) completed the collection of expired VC. The CCK trap, urine (immersed in a Dry Ice bath), and feces receptacles were changed at 12-hr intervals for 72 hr.
AtterminationofthesiuQytheammalsweredecapitated.exsanguinatedandsamDlesof
tissue! liver, lung, perirenal fat.muscie. plasma) were collected for analysis of 14C activity.
The remaining carcass was skinned and homogenized (50%, w/v) in distilled water.
Sample preparation and assay. Aliquots of the VC traps (5 ml) were prepared for counting by addition of an equal volume of scintillating agent containing Concifiuor (Mallinckrodt Chemical Works) 2-methoxyethanol. and toluene (6:11;33).
Five-milliliter samples of the solution from the CO: trap were added to 5 ml of 5 M ethanolamine in 2-methox\ethanoi and 10 ml of the scintillating agent described above. The urine samples. 250 u\. were preoared by adding 1 ml of distilled water and 12 ml of Aquasoi (New England Nuclear).
Aqueous homogenates < 33 or 50%, w:v) of feces, tissues, and the remaining carcass were oxidized to CO: ana H:0 in a Biological Material Oxidizer (Beckman lnstru-, ments). The 14C02 from tne combustion was trapped in 8 ml of 5 m ethanolamine in 2-methoxyethanol and added to the Concifiuor as described previously. Combustion of the samples of skin anu fat was performed without homogenization. 1AC activity in all samples was determined by scintillation counting.
Isolation of urinary metabolites of I 'C by high pressure liquid chromatography (hplc). Urine (5 to 10 ml) containing 0.05 to 1.0 uCi of 14C activity (ranging from 9-2000 ug VC equivalents) was Kocnylized ana the solid residue extracted once with 5 ml of methanol, once with 0.5 mi of water, and twice more with 5 ml of methanol. The solu tion was centrifuged after each extraction and the clear supernatants removed and combined. The extraction of 1AC activity into the combined supernatants was 100 2 (SD)%. The combined buoernaiani fractions were evaporated to dryness under a stream of nitrogen at room temoerature and the residue reconstituted in 1 ml of methanol.
A Corasii II (37-50 um. Waters Associates. 2-mm i.d. x 50-cm glass) liquid chroma tography column was used to separate the liC-contaming urinary metabolites for both identification and routine cuantitauon. The pumping system used was a Waters Model 660 Solvent Programmer with two Waters Model 6000 Pumps. The flow rate was maintained at 2.0 ml. mm w nile the sols ent was programmed to form nonlinear gradient No. 7 from hexane:dioxane (7:1) to 2-propanol:methanol (3:2) over 20 min. The
342 WATANABE. MCGOWAN AND GEHRING
column temperature was ambient temperature, about 23C. Typically, from 10-75 u\ of methanol solution containing from 1000-150,000 dpm of 14C activity were injected onto the column followed by a hexaneidioxane (7:1) wash for about 10 sec.
The eluant was monitored at 2:4 or 2S0 nm using a Chromatronix 220 uv monitor and collected in 2-ml fractions. Aliquots (25-250 p 1) of the fractions from the HPLC were combined with 10 ml of Aquasol (New England Nuclear) and the 14C activity determined by liquid scintillation counting. The fractions making up individual peaks of UC activity were combined, c. aporated to dryness under N-, and dissolved in a small volume of methanoi.
A I-m Porasil B (250) column (Waters Associates) was also used for preparative scale work-up of urine samples for structure identification. The Porasil column was eluted with a linear gradient from nexane: chloroform (1:1) to methanol. The results were similar to those obtained from the Corasil II column except for a higher column capacity and poorer peax resolution. With both columns the recovery of 14C activity was quantitative and the coiumns could be reused numerous times before peak resolu tion decreased significantly.
For further purification of Metaoolite A additional HPLC was done using alumina. The column was prepared by packing a 2-mm i.d. x 1-m glass column with acidic alumina AG-4 (40 /tm.. Bio-Rad Laboratories). The column was repacked for each run. The packed column was washed with methanol until a stable baseline was indicated by the uv monitor. About 50-ug VC equivalents of Metabolite A from the initial Porasil separation were injected on the coiumn and eluted with 6% concentrated aqueous NH40H in methanol at a flow cf 1 mi/min. The eluant was collected in fractions of 1- 2.5 ml and an aliquot countea as before. The fractions making up the peak of l4C activity were combinea and evaporated to dryness under N2.
Gas chromatography ( ?c). The collected eluant fractions from the initial hplc separa tion on Corasil II or Porasil B(259) were combined to give three fractions containing the three peaks of :4C activity. The first two major peaks, designated Metabolites A and B, were evaporated to dryness unaer N;, dissolved in methanol :diethylether (1:1), and methylated using diazomethane. They were then evaporated to dryness and dissolved in methanol to give a concentration of 0.5- to 1-qg VC equivalents and 500-1200 dpm of l4C activity/ml.
The derivatized fractions were cr.romatographed on one of two columns: (A) 6-ft. x 2- mmi.d. glass packed with 10''o LCW-98on80, lOOGasChromQ, or(B)6-ft. x 2-mm i.d. glass packed with 30 OV-210 on 80'IOOChromsorb 750. Column A was program med from 100 to 250;C at 10'C mm and column B was run at 125C isothermallv.
The outlet of the column was routed into an effluent splitter using a 5:1 split ratio. One part was fed into the flame ionization detector while five parts exited through a 1 8-in. o.d. stainless steel heated exit line to a fraction-trapping apparatus. A HewlettPackard 5750B gas chromatograpn was used with the injection port and flame ionization detector maintained at *250 ana 2"5:C. respectively. The helium carrier gas flow rate was 35 mfimin.
When fractions were trappea from the gc for counting of 14C-labeled metabolites, the glass capillary containing the condensed metabolite was washed into a scintillation viai using 2 ml of Aquasoi. Eight aaditional milliliters of Aquasol were added to the vial for counting.
R&S162607
FATE OF [14C] VINYL CHLORIDE IN RATS
343
Mass spectroscopy (ws). Low resolution mass spectra were run on a Finnigan Model 3000D gc-ms operating at 70 keV using both direct insertion probe and gc iniets inter faced with the Model 6000 ms data system. When using the gc inlet the columns and gc conditioned were identical to those previously given. When using the direct insertion probe, samples (about 1 ug of metaooiite) were placed in a quartz cup and the tempera ture of the probe was slowly raised from ambient to 250C.
High resolution gc-ms were run on an AEI MS-30/DS-50 double beam mass spectro meter at Dow Corning Analytical Services. The resolution was 4300 and the mass measuring accuracy was generally witnin 0.005 mass units over the range of interest. The gc conditions were as previously described.
Synthetic metabolite standards. Samples of ;V-acetyl-5-(2-hydroxyethyi)-cysteine and thiodiglvcoiic acid were synthesized by N. Peet of Dow Lepetit. Pharmaceutical R & D. Samples of 14C-Iabeied iV-acetyl-5-(2-hydroxyethyl)-cysteineand thioaigiycoiic acid were synthesized by D. Gransaen of Dow Environmental Sciences Research.
RESULTS
Disposition of['*C]l'C in Rats. Excretion of 14C activity within 72 hr following a single oral dose of 0.05. 1. and 100 mg kg [14C]VC is shown in Table 1. The percentage
TABLE 1
Percentage of Administered 14C Activity Recovered Following a Single Oral Dose of Vinyl Chloride i VO*
0 05
Dose (mg/kg) 1.0
100
Expired: As VC As CO,
Urine Feces Carcass and tissues Cage wash1 Total recovery
1.43 -- 0.13 8.96 = 0.59 68.34 3 0.54 2.39 r 0.52 10.13 = 1.93
0 91.25 r 2.47
2.13 0.22 13.26 + 0.47 59.30 2.75 2.20 + 0.39 11.10 + 0.47 0.84 + 0.45 88.83 + 1.98
66.64 z. 0.67 2.52*0.13
10.84 * 0.95 0.47 = 0.06 1.83 *0.14
0 82.30 - 0.43
J Percentage of dose e.xcretea over 72 hr. Oniv the 4C activity associateo with the expired VC can be attributed to VC per se.
1 Mean SE five rats per dose. c Distilled water wash of metabolism cage at termination of the study.
of the dose expired as VC per se was 1. 2. and 67 '0, respectively. Due to the dispropor tionate pulmonary elimination of VC. a greater percentage of the dose was metabo lized and eliminated in the urine, feces, and as expired 14CO; bv rats given 0.05 and 1 mg/kg than by rats given 100 mg kg. No special precautions were taken to insure detection of volatile compounds when collecting and processing the urine, feces, and carcass. Thus, the 14C activity in the excreta and carcass represent nonvolatile meta bolites of [14C]VC. The overall recovery of 14C activity was 91.3. 88.S. and 82.30o at the 0.05-. 1-. and 100-mg kg dose levels, respectively. The primary radiochemical contaminant in the [14C]VC preparation was 14C-Iabeled acetylene (4-5 0o). Due to the
R&St 62608
344 WATANABE, MCGOWAN AND GEHRING physicochemical properties of acetylene, the solvent cold traps used for the collection of expired VC would not trap the highly volatile [14C]acetylene. Based on this assump tion the total recovery of llC activity due solely to VC would be slightly higher than expressed in Table 1.
The characteristic pattern of pulmonary elimination of VC differed greatly between rats given 0.05 or 1 mg kg than those given 100 mg/kg (Fig. 1). During the first 4 hr after administration of 100 mg kg, the pulmonary elimination of VC was biphasic. The two iinear portions of the curves were determined by regression analysis of the logarithmically transformed data. The data were feathered to obtain an approximation of the rate constant for the rapid phase of elimination. The apparent first-order rate
Hours
Fig. 1. Expired \inyl chloride expressed as percentage of the dose administered (0.05. 1, and 100 mg/kg) versus time (hr). Each point represents the mean - SE of the mean of five rats. The linear phases of the curses were fit by Iinear regression analysis.
constants for tne rapid and slow phases were 0.04S 0.005 and 0.017 + 0.008 min'1 (SDk These rate constants correspond to half-lives of 14.4 and 40.8 min. Following the two low doses of 0.05 and 1 mg kg. pulmonary elimination of VC was monophasic with apparent rirst-oraer rate constants of 0.013 0.001 and 0.012 0.001 min-1 (ZSD) corresponding to half-lnes of 53.3 and 57.8 min, respectively. To assure that the 14C activity collected in the cold traps was VC, the trapping solutions were analyzed by gas chromatography. Other than the components of the trapping solution the only compound detected had an identical retention time as a standard gas sample ot VC.
The elimination of 14C activity in the urine as a function of time after 1 and 100 mg/kg is shown m Fig. 2. The initial linear portions of the excretion curves from 12-36 hr were fit by regression anaKsis of the logarithmically transformed data. Similar biphasic elimination was evident at all dose levels. The curve for the 0.05-mg/kg dose was essentially identical to the 1 -mg kg dose and therefore was not graphically represented.
Ft&St 62609
FATE OF [14C] VINYL CHLORIDE IN RATS
345
Fig. 2. 1'*C activity excreted in the urine expressed as percentage of the dose administered (1 and ! X) me Kg) versus time <hr). Each point represents the mean r SE of the mean for five rats. The initial iinear segments of the curves 112-36 hr) were fit by linear regression analysis.
For racs given 0.05. l.anci 100 mg, kg, respectively, estimates of the apparent first-order rate constants tor the initial phase of elimination were 0.155 0.006, 0.150 0.020, and 0.152 = 0.011 (SD1 hr'1. These correspond to half-lives of 4.5. 4,6. and 4.6 hr. The data for the secondary phase of the urinary excretion curves were extremely variable and since this phase accounted for less than 3% of the total urinary radioactivity, no attempt was made to estimate the rate constants.
The liver contained the highest concentration of 14C activity after 72 hr at ail dose ievels (Table 21. The concentration in the liver expressed on a percentage dose per gram
TABLE 2
Percentage of the Administered -jC Activity per Gram of Tissue after Administration of [1*CjYinyl Chloride11
Dose (mg/kg)
Tissue
0.05 1.0 100
Liver Skin Carcass Plasma Muscle Lune Fat
0.172 = 0.025s 0.070 z 0.023 0.027 = 0.007 0.041 0.004 0.028 = 0 003 0.050 = 0.003 0.030 = 0.004
0.182 0.005 0.076 0.010 0.046 0.002 0.053 0.007 0.031 0.003 0.061 0.003 0.045 0.008
0.029 0.002
0.010 + 0.002
0.007 0.001
NDf
0.006 = 0.001
0.011 z 0.001
0.006 z 0.001
J Remaining in the boov alter 72 hr. ' Mean z SE, five rats per dose. r Not detectable above background.
R&S162610
346 WATANABE, MCGOWAN AND GEHRING
tissue basis was three- to fivefold greater than muscle, lung, or fat. Consistent with the proportionally greater metabolism at the 0.05- and 1-mg/kg level, the proportion of the dose remaining in the tissues after 72 hr was considerably higher in rats given the low doses than those given 100 mg;kg.
Isolation and identification of urinary metabolites of VC. Using hplc on a Corasil II column, methanol extracts of urine from rats given 0.05 to 100 mg./kg [14C]VC orally
Fig. 3. Separation of urinary meraoolites by high pressure liquid chromatography (hplci on a Corasil II column. The prohle formed by ihe solid line shows the separation of radioactivity representing metabolites A. B. and C. by hplc versus time (min, flow rate = 2 ml/min). The dashed line depicts the nonlinear c.-acient prohle usea lo erfect the separation expressed as percentage solvent b. Solvent a. hexane:dioxane i7-1); solvent b. 2-prooanol:methanol (3:21.
were separated into three major peaks containing about 95% of the applied 14C activity and several minor peaks. Figure 3 shows a chromatogram of a typical sample. The metabolites were designated by their elution order from the column as A. B. and C. The proportions of radioactivity determined by the three metabolites were not influ enced by the dose (Table 31.
TABLE 3 Separation of "`C-Containing Urinary Metabolites from Rats Given Vinyl Chloride"
Compound
Dose (mg/kg)
0.05(416
1.0(51
100(51
(A) .Y-acetyi-S-(2-hydrox> ethyl l-cysteme (B) Thiodiglycolic acid
(C) Unidentified
Total
30.4 + 2.0C 25.6 1.9 38.6 + 2.9
94.6
36.2 3.9 23.7 1.1 34.5 + 4.6
94.4
29.1 r 2.0 25.4 0.9 36.6 + 2.0
91.1
J Metabolites were separatee and quantitated by high pressure liquid chromatography. Values are exDressea as percentage of total urinary radioactivity,
5 ( ) = Numoer of animais per dose. c Mean r SE.
R&St 62611
fate of [14c] vinyl chloride in rats
347
Additional purification of the metabolite A fraction from the initial Corasil II or Porasil separation was carried out on an acidic alumina hplc column with a methanol: aqueous NH40H eluant. The 14C activity eluted as a single peak containing over 90% of the applied radioactivity. A mass spectrum of the combined fraction was determined using a direct sample introduction probe. The sample was shown to have an apparent weak ion of nve = 189 and a prominent peak at mie = 130. Earlier work with S-(2hydroxvethyD-cysteine had shown that the highest mass peak found corresponded to the dehydrated molecular ion (M-18).
If a similar dehydration had occurred in the metabolite, the mass spectrum obtained corresponded to that expected for ;V-acetyl-5-(2-hydroxyethvl)-cysteine (1).
o
N'H--C--CH, HO--CH,--CH, --S--CH,--CH--CO,H
------- -
o
:!
NH--C--CHj
i
CH,=CH--S--CHj--CH--COjH *- H,0
M.W = 207 (I)
M.W.= 189 (2)
The mass spectrum of a synthesized sample of iV-acetyl-5*(2'hydroxyethyl)-cysteine was found to be virtually identical to that of the material found in the Metabolite A fraction (Fig. 4).
3T !
rt
sol- I
601- i
-O-Ch.-
vw - 2Z7
61
'4 *7
^ ,_r__x__ --_J._.L - '^or |-13
30 h '
6071- '| _.
40*-
51
:o(- .I | -4
o
-CH-C-CH \h-C-Ch.
:o '43
189
I
'39
50 '10 .50 ' `0 190
Fig. 4. Mass spectra of iV-acetyl*5-(2-hydroxyethvl)-cystcine (top) and urinary Metabolite A (bot* tom). Al! peaks /we greater than 140 were expanded by a factor of 10.
Using a 10% UCW-98 column programmed from 120 to 250:?C* the methylated Metabolite A fraction was shown to contain a peak which had the identical retention time and mass spectrum as that of the methyl ester of the previously synthesized Aacetyl-5-<2~hydroxyethvl)-cysteine standard.
Additional conrirmation of the identity of Metabolite A was obtained by coinjection ol a synthetic uCMabeled .V-acetyl-5-(2-hydroxyethyl)-cvsteine with the urinary'
R&S162612
348 WATANABE, MCGOWAN AND GEHRING
metabolites using hplc. It was found that the added 14C activity coeiuted quantitatively with Metabolite A on both the Corasii II and acidic alumina columns described previously.
When the methylated Metabolite B fraction from the initial Porasil separation was run on the gas chromatograph it was possible to associate a single peak in the chromato gram with the 1+C activity in the sample by trapping the material at the column outlet. The best separation was obtained using an OV-210 column at 125C (isothermal). Initial gc-ms analysis of methylated Metabolite B indicated that it was a sulfur contain ing carboxylic acid. By high resolution gc-ms Metabolite B was shown to be a carboxylic acid (methyl ester) with a nominal molecular weight 178 and molecular formula Q,H100*S. A listing of the important peaks is shown in Table 4.
mie
178.0302 146.0064
119.0165 118.0127 91.0247
74.0393 61.0142
59.0118 45.9905 45.0379
` Molecular ion.
TABLE 4 High Resolution gc-ms of Metabolite B
Molecular formula
Structure11
Oo
QH.oCLS C,H*03S
CtH-O.S C*H402S C,H-OS
c3h.,oc2hs
c2h3o2 ch,s c2ho
CHjO--C--CH2--S--CH2C--OCHi. [M minus -CH3OH]+
0r 11 ,M" minus --C--OCHj.
[--CH2--S--CH:--O--CH3]+ r
CH3C--OCHj.
0r
C--OCHj.
[CH2CH2OH]+
When a sample of thiodigiycolic acid (dimethyl ester) (3) was run on the Finnigan gc-ms. the mass spectrum was found to be identical to that of Metabolite B (Fig. 5).
09 CHjO--C--CH;--S--CHj--C--OCHj
(3)
R&SI62613
DISCUSSION
The results of the current study establish that the fate of VC following ingestion bv rats is aose-dependent. Following a dose of 0.05 or 1 mg kg [14C]VC. most of the UC activity was excreted in the urine as nonvolatile metabolites and as 11CO; in expired air. After 100 mg kg. the predominant mode of excretion was by expiration of VC. There-
FATE OF [1AC]VINYL CHLORIDE IN RATS
00 r 45 50 -
00 -- C-O-C-CH - -o--CH/--C-O-CH,
CO
50 -
cc
1
r 51 31
9 146
40 74 i
1- <
:o " .(i
t, i.
oo~[ 45
30 i-
50 hr
59
31
|
L
i
1
1,1, ] 146
19 i
i
. 71 .
40 - i !j
:o '
'78
j
Mil
50
j. !
?o no '30 150 170 190
349
Fig, 5. Mass spectra of the methyl ester of thiodiglycolic acid (top) and the methyl ester of metabolite
B.
fore, it appears that the metabolism of VC is a dose-dependent, saturable process. Similar results on the excretion of [I4C]VC following oral ingestion in rats have been found recently by T. Green and D. E. Hathwav (personal communication).
The fate of VC following oral administration is consistent with its fate after inhalation (Hefner ei al., 1975). In those studies, the rate of VC metabolism was more rapid in rats exposed to 100 ppm or less than in rats exposed to 220 ppm or greater. Because of the experimental procedure used by Hefner et al. (1975). evidence was obtained indij eating that at least two pathways may be involved in the metabolism of VC and that the degree of their involvement was concentration-dependent.
Recently, R. J. Withey (personal communication) has found a biphasic clearance of VC from the plasma of rats after cessation of inhalation exposure to concentrations of 500 to 7000 ppm or after iv injection of 50 to 75 mg;kg VC. The half-lives of the biphasic process were 4 to 9 min and approx. 40 min. These results deviate to some degree from those reported here. In this study the biphasic pulmonary excretion of VC following a dose of 100 mg/kg had half-lives of 14.4 and 40,8 min for the two phases. The half-lives tor the slow component are similar. With regard to the differences for the half-lives of the first phase. 4 to 9 min vs 14.4 mm. our value may be somewhat slower because of delayed absorption from the gastrointestinal tract. In any case, the results of this study confirm and complement those of R. J. Withey (personal communication).
Of paramount importance to assessing the hazard of exposure to VC is the fate of that portion metabolized. In the previous study (Hefner ct al.. 1975) it was speculated that potential alkylating metabolites such as chloroacetaldehyde and chloroethvlene oxide may be formed in riro from VC. Two of the three major urinary metabolites of VC have been identiried as A'-acetyl-5-(2-hydroxvethyl)-cysteine and thiodiglycolic acid. The identirication of these metabolites is consistent with the proposed pathways for meta bolism of VC. Chloroacetaldehyde and chloroethvlene oxide will conjugate with gluta
350 WATANABE. MCGOWAN AND GEHRtNG
thione and cysteine leading ultimately to the types of metabolites identified in the urine. Gothe (1974) reported recently the trapping of acetaldehyde formed from VC by an in vitro microsomal preparation. This provides additional support for the formation of chloroacetaldehyde.
Recently. T. Green and D. E. Hathwav (personal communication) have shown that after multiple dosing of [14C] VC in rats (50 mg/kg orally, three times at 3-hr intervals), thiodiglycolic acid was the major metabolite of vinvi chloride (about 47' of the total urinary 14C activity i. The present work confirms that thiodiglycolic acid is one of the major metabolites of vinvi chloride.
Two other major urinary metabolites identified by T. Green and D. E. Hathwav (personal communication) were 5-(2-chloroethyi)cysteine and its acetylated analog, A'-acetyl*5-(2-chloroethyl icysteine. Since we have identified a major metabolite as :V-acetyl-S-(2-hyaroxyethy I (cysteine the question is raised whether the vinyl chloride metabolites exist in the urine as hydroxyethyl or chloroethvl conjugates.
S-i2-chloroeihyh-C>steine is a monofunctional sulfur mustard and has been shown to be mutagenic (Fahmy and Fanmy. 1970). It seems doubtful, however, that it could be detected intact in the urine even if formed because of its susceptibility to hydrolysis to S-(2-hydroxyethyi (-cysteine. Jones (1973) reviewing the metabolism of 1.2-dibromoethane reported that the initially formed S-(2-bromoethyl)-giutathione is unstable and spontaneously hydrolyzes to 5-(2-hydroxyethyl)-glutathione producing 5-(2-hydroxvethyii-cysteine as the primary metabolite. A similar hydrolysis would be expected for the chloroethvl conjugate. More direct evidence for the instability of 5-(2-chloroethyl)cysteine is its reported half-life of 7 min in aqueous solution at 37"C and pH 7 (Ross, 1962).
T. Green and D. E. Hathwav (personal communication) identified the vinyl chloride metabolites by preparing the ,V-tnfiuoroacetyl n-butvi esters by the method of Gehrke and Stalling (1967). This involves the formation of the methvi ester using 1.25 m HC1 (gas) in methanol at room temperature followed by the transesterification to then-butvl ester using 1.25 m HC1 (gas) in //-butanol at IOOC. It has been reported by Connors ana Ross (1958) and Carson and Wong (1964) that S-(2-chloroethyl)-cysteine can be prepared by heating 5-(2-hydroxyethyl)-cvsteine with concentrated HC1. It seems likely, therefore, that if the urinary vinyl chloride metabolites were present as S-(2hydroxs ethyl (-cysteine and its acetylated analog they may be converted into the corresponuing cnloroethsi compounds by the denvatization procedure used by T. Green and D. E. Hathwav (personal communication).
Therefore, it appears that the vinyl chloride metabolites identified by T. Green and D. E. Hathwav (personal communication) correspond to those identified in this study but that the chloroethyi conjugates were in fact artifacts of the derivitization procedure. This does not. however, rule out the initial formation of the chloroethyi conjugate in the animal followed b\ hydrolysis to the corresponding hydroxyethyl compounds before excretion.
As a final point for aiscussion. it is important to consider how the data gathered by this laboratory and others may relate to assessing the hazard of exposure to VC. Such a discussion has been made presiouslv (Hefner et at.. 1975). Data gathered since that report continue to support the hjpothesis that the carcinogenicity of VC is related to the metabolic formation of alkylating metabolites. Numerous studies have reported
R&S162615
FATE OF [14C]VINYL CHLORIDE IN RATS
351
the enhancement of the positive mutagenic response in Salmonella typhimurium exposed to VC if microsomal enzymes or fortified liver homogenates are present (Rannug et ai. 1974: Bartsch et ai, 1975: Malavielle et ai., 1975).
The metabolites of VC identified in the urine indicate that the primary deactivating mechanism is by conjugation with the nonprotein free sulfhydryl compounds, gluta thione and cysteine. Studies in this laboratory have shown that the nonprotein free sulfhydryl groups of the liver are depleted in rats exposed to VC both as a function of concentration and exposure duration (Watanabe et at., 1976). As the nonprotein free suifhvdrvl concentrations are depleted, the aikyiating metabolites are more likely to react with protein. DNA. and RNA. eliciting proportionally greater toxicity. This phenomena has been demonstrated to markedly influence the toxicity of compounds such as bromobenzene. furosemide. and acetaminophen (Gillette. 1974a,b; Mitchell et ai, 1973: Jollow et al.. 1974). The threshold for the toxicity of these materials coin cides with their reactions with tissue macromolecules (protein, DNA, and RNA). Reactions with these cellular components and discernible toxicity occurs only after the glutathione content is sufficiently depleted to preclude deactivation of the reactive metabolites of these agents.
ACKNOWLEDGMENTS
The authors wish to express appreciation to M. Hiser. R, Francisco, and J. Zempel for technical assistance throughout the study. Appreciation is also gratefully acknowledged to N. Peet and D. Gransden for synthesizing the metabolite standards, and to the Michigan Division Analytical Laboratory of the Dow Chemical Company for their continued support.
REFERENCES
Bartsch. H.. Malavielle. C. and Montesano. R. (1975). Human, rat. and mouse liver mediated mutagenicitv of \invl chloride in Salmonella tvphtmuntim strains, hit. J. Cancer 15. 429-437.
Carson. J. F. and Wong. F. F. (1964). The synthesis of L-l,4-thiazane-3-carboxylic acid 1-oxide. J. Organ. Chem. 29. 2203.
Connors. T. A. and Ross, W. C. J. (1958). a-Methylcysteine and 5-2-chloroethyl-cysteine. Chemistry and Industry, 366.
Creech. J. L. and Johnson. M. N. (1974). Angiosarcoma of liver in the manufacture of polyvinyl chloride. J. Occtw. Med. 16. 150-151.
Fahmy. O. G. and Fahmy, M. J. (1970). Gene elimination in carcinogenesis: Reinterpretation of the somatic mutation. Cancer Res. 30. 195-205.
Gehrke, C. W. and Stalling. D. L. (1967). Quantitative analyis of twenty natural protein amino acid by gas-liquid chromatography. Separation Science 2(1) 101-130.
Gillette. J. R. (1974a). A perspective on the role of chemically reactive metabolites of foreign compounds in toxicity.--1. Biochem. Pharmacol. 23. 2785-2794.
Gillette. J. R. (1974b). A perspective on the role of chemically reactive metabolites of foreign compounds in toxicity.--II. Biochem. Pharmacol. 23, 2927-2938.
Gothe. R.. Calleman. C. J.. Ehrenberg. L. and Wachtnieister, C. A. (1974). Trapping with 3,4-dichlorobenzenethiol of reactive metabolites formed in vitro from the carcinogen vinyl chloride. Ambto 3. 224-226.
Hefner. R. E.. Jr.. Watanabe. P. G. and Gehring. P. J. (1975). Preliminary studies of the fate of inhaled vinyl chloride monomer (VCM) in rats. Ann. N. Y. Acad. Set. 246. 135-148.
Jollow. D. J., Thorgeirsson, S. S.. Potter. W. Z.. Hashimoto. M. and Mitchell, J. R. (1974). Acetaminophen-induced hepatic necrosis VI. Pharmacology 12, 251-271.
gi.QZQlS'Sfc'
352 WATANABE, MCGOWAN AND GEHRING
Jones. A. R. (1973). The metabolism of biological alkylating agents. Drug Metabolism Reviews 2(1), 71-100.
Malavielle. C., Bartsch, H., Barbin. A., Camus, A. M. and Montesano. R. (1975). Muta genicity of vinyl chloride, chloroethyleneoxide. chloroacetaldehyde, and chioroethanol. Biochem. Biophys. Res. Common. 63, 363-370.
Maltoni. C. and Lefewine, G. (1974). La potenzialita die saggi spermentali nella predizione dei rischi oncogem cni ambieniaii. Un esempio: II chloruro di vinile. Accact. National Dei Lincei (Romai (Ser. VIII) 56, 1-11.
Mitchell, J, R,, Jollow, D. J., Potter, W. Z., Gillette, J. R. and Brodie. B. B. (1973). Acetaminophen-inducea hepatic necrosis IV. J. Pharmacol. Exp. Titer. 187. 211-217.
Rannug. U.. Johansson. A.. Ramel. C. and Wachtmeister. C. A. (1974). The mutagenicity of vinyl chloride after metabolic activation. Ambio3, 194-197.
Ross. W. C. J. (1962). Biological Alkylating Agents, p. 173, Butterworth. Washington. D.C. Wagner. E. R. and Muelder. W. W. (1975). A procedure for preparing ``C-labeled vinyl
chloride. Ann. N. Y. Acad. Sci. 246. 152-153. Wagner. E. R., Muelder. W. W.. Watanabe, P. G., Hefner. R. E., Jr.. Braun. W. H.
and Gehring. P. J. (1976). Gas chromatographic method for the preparation of re labeled vinyl chloride. J. Labeiea Compounds (in press). Watanabe. P. G.. Hefner, R. E.. Jr. and Gehring, P. J. (1976). Vinyl chloride induced depression of hepatic nonprotein suifhvdryl content and effects on bromsuiphalein (BSP) clearance in rats. Toxicology (in press).
R&S162638