Document DG12ZjGpd18MR4Qm4K8pa6qqQ
MANUFACTURING CHEMISTS ASSOCIATION
1825 CONNECTICUT AVENUE, N. W. WASHINGTON, D. C. 20009 (202) 483-6126
September 27, 1977
TO:
Vinyl Chloride Technical Panel
SUBJECT: I. The Chemistry and Biogenesis of the S-Containing Metabolites of Vinyl Chloride in Rats
II. Comparative Mammalian Metabolism of Vinyl and Vinylidene Chlorides in Relation to Oncogenic Potential
Gentlemen:
Mr. R. N. Wheeler has thoughtfully made available the subject technical papers which he received from Mr. J. Stafford of ICI. Your copies of these papers are enclosed.
The contribution by Dr. David E. Hathway on the elucidation of the role of vinyl chloride metabolites in the various reaction sequences which comprise the metabolic pathway (reference Subject II) was well received at the Symposium on Comparative Metabolism and Toxicity of Vinyl Chloride Related Compounds (NIEHS, Bethesda, Maryland).
Sincerely,
JTS:ec Enclosures
J. T. Seawell Project Manager Vinyl Chloride Research
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Date
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Dear Mr Wheeler
VCM METABOLISM
You may care to have the enclosed publication by Green and Hathway in Chem-Biol Interactions (1977) pages 137 - 150. I also enclose a copy of the paper Dr Hathway gave at Bethesda, Maryland, on 2 - 4 May, 1977 this is due to be published in Environmental Perspectives in the near future.
Yours sincerely
J Stafford Division Manager Health and Environment Protection
EiC
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Chem.-Biol. Interactions. 17 (1977) 137--150 Elsevier/North-Holland Scientific Publishers, Ltd.
137
THE CHEMISTRY AND BIOGENESIS OF THE S-CONTAINING METABOLITES OF VINYL CHLORIDE IN RATS
T. GREEN and D.E. HATHWAY
Imperial Chemical Industries Limited, Central Toxicology Laboratory, Alderley Park. Cheshire SKIO 4TJ (Great Britain)
(Received October 20th, 1976) (Accepted January 25th, 1977)
SUMMARY
In order to determine whether vinyl chloride yields chloroethylene oxide in vivo, the biogenesis of the various urinary S-containing metabolites in rats has been investigated,
N-Acetyl-S-(2-hydroxyethyl)cysteine is a major vinyl chloride metabolite in rats, but according to the method of protective esterification that is used, so either N-acetyl-S-(2-chloroethyl)cysteine or 7V-acetyl-S-(2-hydroxyethyl)cysteine may be isolated from the body fluids. N-Acetyl-S-vinylcysteine is a second related metabolite. These S-containing vinyl chloride metabolites are not mutagenic in S. typhimurium. Neutral methanol methylates N-acetyl-S(2-hydroxyethyl)cysteine. 7V-Acetyl-S-(2-methoxyethyl)cysteine plus N-a.eetyl-S-vinylcysteine degrade to give the volatile S-(2-methoxyethyl)(prop-l or 2-enyl)sulphide.
Administration of several vinyl chloride metabolites and closely related compounds to rats shows that chloroacetaldehyde and S-(carboxymethyl)cysteine, but not chloroacetic acid, lie on a pathway or pathways connect ing vinyl chloride with thiodiglycollic acid. The fact (a) that chloroacetal dehyde affords both thiodiglycollic acid and N-acetyl-S-(2-hydroxyethyl)cysteine in the animal and (b) that S-(carboxymethyl)cysteine has been iden tified amongst the hydrolytic products from an hepatic extract prepared from vinyl chloride-treated animals is consistent with the formation of chlo roacetaldehyde, and with the reaction of chloroethylene oxide or chloro acetaldehyde with glutathione in the presence of a glutathione S-epoxide transferase to give the identified S-containing metabolites.
Abbreviations: GC, gas chromatograph.
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INTRODUCTION
The way in which various S-containing metabolites of vinyl chloride are formed in vivo ought to provide evidence for the epoxidation which has been suggested by in vitro studies [ 1--4 ]. This supposition has caused us to inves tigate again the derivation of these substances, because in a previous paper [5], where the Fischei^-Speier esterification with butan-l-ol had been used for stabilising the S-containing vinyl chloride metabolites, it became appar ent (see Ref. 6) that such derivative formation may be less suitable for pro tecting these substances in comparison with amino acids, and, e.g. 2-chloroethyl sulphides would be expected to be highly reactive in water [7],
The present paper describes the results obtained and their possible inter pretation. Poster material (no. 04-7-433) about some preliminary results was exhibited at the 10th International Congress of Biochemistry that was held in Hamburg during July 25--31, 1976.
MATERIALS AND METHODS
Chemicals Bromoethanol and L-cysteine were condensed with Na and liquid NH3 to
give S-(2hydroxyethyl)-L-cysteine (8), which crystallized from 92% ethanol with a m.p. of 202C (decomp.). (Carson and Wong [8] gave m.p. of 189-- 189.5C). (Found: C, 36.5; H, 6.8; N, 8.4; S, 19.4%; CsHn03NS requires C, 36.4; H, 6.7; N, 8.5; S, 19.4%). S-(2-Hydroxyethyl)-L-cysteine on heating in reagent hydrochloric acid (38%) gave S-(2*chloroethyl)-L-cysteine hydrochlo ride (m.p. 182C), and from these 2 compounds, ALacetyl-S-(2-hydroxyethyl)-L-cysteine and Ar-acetyl-5-(2-chloroethyl)-L-cysteine were prepared [8]. The mass spectra of all 4 substances were in agreement with the pro posed structures, and that of the O-methyl ester derivative of !V-acetyl-iS-(2hydroxyethyl)-L-cysteine is shown in Fig. 1, but that of the O-butyl ester of fV-acetyl-S-(2-chloroethyl)-L-cysteine was recorded previously [5].
S-vinyl-L-cysteine was prepared from trichloroethylene by 2-stage synthe sis: trichloroethylene and L-cysteine were condensed with Na and liquid NH3 to give S-(l,2-dichlorovinyl)cysteine, which was dechlorinated with Alamalgam to give S-vinyl-L-cysteine [9]. Without further purification, the crude S-vinyl-L-cysteine was acetylated in boiling acetic anhydride. The structure of IV-acetyl-S-vinyl-L-cysteine was confirmed by the mass spectrum, and that of the O-methyl ester derivative is shown in Fig. 1.
S-Carboxymethyl-L-cysteine was prepared [10] from chloroacetic acid plus L-cysteine hydrochloride, and the structure of the crystalline product (m.p. 175--176C, decomp.) was confirmed by mass spectrometry.
Chloroethylene oxide was prepared pure by the method of Rannug et al. [11] *. Purity was assessed by gas chromatography, by which chloroethylene
* Under chemical conditions, chloroethylene oxide has been found to react with cysteine to give 4-carboxy-2-chloromethylthiazolidine, thus involving intermediate formation of S-(2-chloro-l-hydroxyethyl)cysteine but it is very unlikely that the analogous intermedi ate would have been formed from glutathione in vivo in the presence of glutathione S-epoxide transferase, namely S-(2-hydroxyalkyl)glutathione alkyl-epoxide-lyase [E.C. 4.4.1,7).
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M/t
Fig. 1. Mass spectrum of: (a) the O-methyl ester of JV-acetyl-S-(2-hydroxyethyl) cysteine; (b) the O-methyl ester of N-acetyl-S-vinylcysteine.
oxide was readily separable from its chloroacetaldehyde transformation product and from the ethylene oxide starting material. In the mass spectrom eter, chloroethylene oxide is converted into chloroacetaldehyde.
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Radioactive chemicals [14C]vinyl chloride with a specific activity of 0.46 mCi/mmole, and with a
radiochemical purity exceeding 99.0% was synthesized as previously outlined [5].
L-[U-14C]cysteine hydrochloride with a specific activity of 24.5 mCi/ mmole was obtained from the Radiochemical Centre, Amersham, Bucks. (Great Britain).
Experiments with animals Adult male rats (approx. 2 months old, 200 g body weight) were used
[Alderley Park strain (Wistar-derived), specific pathogen-free], and kept on a standard pellet diet.
For the purpose of identifying urinary metabolites [5], groups of 4 rats were administered intragastrically.
(a) [t4C]vinyl chloride (100 mg/kg; 10 pCi) in com-oil solution. (b)Chloroacetaldehyde (50 mg/kg) as an aq. soln. (c) S-(2-hydroxyethyl)-L-cysteine (500 mg/kg) as an aq. soln. (d) S-(carboxymethyl)-L-cysteine (250 mg/kg) in corn-oil suspension, and a 24-h collection of urine was made. Control animals were used in experi ments (b)--(d). (e) Two rats were each given repeated daily i.p. injections of an aq. soln. of L-[U-14C]cysteine hydrochloride for 5 days (total dose, approx. 50pCi). 30 min after the final injection, each animal was given a single dose of vinyl chloride (100 mg/kg, in corn-oil solution by stomach tube, and the 24-h urine was collected. (f) Two rats were each given a single intragastric dose of [l4C]vinyl chloride (450 mg/kg; 15 pCi) as a corn-oil solution. The animals, which were killed by cervical dislocation after 45 min, were dissected rapidly and their livers removed.
Measurement of radioactivity An automated and computerized Intertechnique Model SL30 Liquid Scin
tillation Spectrometer was used for measurement of t4C, making use of stan dard channels-ratio quench-correction curves. Liquid samples were mixed with standard scintillator and radio-assayed direct.
Systematic separation of the urinary metabolites into fractions of chemically similar substances
Urine from each group of rats, (a)--(e), was separated into 3 fractions by anion-exchange chromatography in a manner analogous to that described by Green and Hathway [5], The 3 N acetic acid fractions and the 3 N HC1 frac tions were evaporated separately to dryness under reduced pressure, and the different residues were methylated with an ethereal solution of diazometh ane. Methanolic solutions of the resulting O-methyl esters were analysed in the gas chromatograph--mass spectrometer system and by mass fragmentom-
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etry, The following objectives were pursued with the various residues from the different groups of rats (a)--(e).
(a) Both the 3 N acetic acid and 3 N HC1 fractions were investigated for [14C]vinyl chloride metabolites.
(b) The 3 N acetic acid fraction was analysed by GC--mass spectrometry, as well as by mass fragmentometry, for the N-acetyliS-(2-hydroxyethyl)cysteine metabolite (of vinyl chloride), and the 3 N HC1 fraction was investigated for the presence of thiodiglycollic acid and chloroacetic acid by GC--mass spectrometry.
(c) and (d) The 3 N HC1 fractions were analysed quantitatively for thiodi glycollic acid by GC--mass spectrometry.
(e) In the experiment in which unlabelled vinyl chloride was dosed to rats in which the cysteine--cystine pools had been labelled adequately with 14C, the 3 N HC1 fraction was examined in the GC--mass spectrometer for the presence of the thiodiglycollic acid metabolite and in the gas chromatograph for a peak of [14C]thiodiglycollic acid.
Systematic separation of the hepatic metabolites into fractions of chemically similar substances
The combined livers from the 2 animals (f) (see above) were homogenized in 10 times the volume of extracting solution, which was prepared fresh by mixing 3 vols. of ice-cold ethanol with 1 vol. of ice-cold KH2P04 buffer (24 mmole; pH 5.5) containing EDTA (0.1 mmole) [12], The resulting homoge nate was centrifuged at 10 000 g in a refrigerated head for 15 min, and the supernatant was removed and evaporated under reduced pressure to 5 ml. This concentrate, which contains glutathione and glutathione-related sub stances, was adjusted to pH 10--11 and applied to a column of IRA-410 anion-exchange resin in the CH3COj cycle, which was successively washed with deionized water (500 ml) and eluted with 3 N acetic acid [5], Bulked fractions containing significant amounts of 14C were evaporated to dryness under reduced pressure, and a solution of the residue, which was formed by heating in 0.4 ml of formic acid (90%) for 5 min at 100 C, was mixed with 4 ml of 2 N HC1, and heated for 2 h at 100C [13]. An evaporate, prepared from the resulting hydrolysate, was successively esterified with diazometh ane and acylated with trifluoroacetic anhydride in methylene chloride solu tion. The derivativized sample was examined both by means of GC--mass spectrometry and by mass fragmentometry.
Gas chromatography Fractions containing radioactive metabolites were examined with a Pye
Model 104 instrument that was equipped with flame-ionization detection and that was coupled to an E.S.I. Nuclear 504 Radiogas detector. The col umn effluent was split in the ratio of 10 : 1 between the Radiogas detector and the flame-ionization detector. This gas chromatograph was fitted with glass columns (1.5 m long X 4 mm internal diameter), which were packed either with 6% (w/w) of OV-101 on Gas Chrom Q (80--100 mesh size) or
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Fig. 2. Mass fragmentogram of the O-methyl ester of iV-acetyl-S-(2-hydroxyethyl)cysteine from the urine of chloroacetaldehyde-treated rats (the gains from m/e 144, m/e 162 and m/e 203 are in the ratio 1:10: 10). A represents the injection point for a methanolic solution of the standard sample and B that for the 3 N acetic acid fraction (for details, see Materials and Methods, derived from urinary material The latter shows all 3 ions with identical relative intensities and retention time as the standard.
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Fig. 3. Mass fragmentogram of the O-dimethyl ester of the Af-trifluoroacetyl derivative of S-(carboxymethyl)cysteine from the urine of chloroacetaldehyde-treated rats (the gains for m/e 303, m/e 271 and m/e 244 are in the ratio 1 : 1 : 1). A represents the injection point for a solution of the standard sample and B that for the 3 N acetic acid fraction (for details, see Materials and Methods) derived from urinary material. The latter shows all 3 ions with identical relative intensities and retention time as the standard.
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with 10% (w/w) of SP2330 on Supelcoport (100--120 mesh size). All of the columns were operated at a 30 ml/min flow rate of a (95 : 5 v/v) A--C02 mixture.
Radioactive peaks were located, and the corresponding samples were anal ysed by GC--mass spectrometry, using the same columns under identical operating conditions. Fractions containing unlabelled metabolites were examined directly by GC--mass spectrometry, using the previously-described columns.
Fractions of chloroethylene oxide were tested in the gas chromatograph by using a column (2.7 m long X 2 mm internal diameter) which had been packed with 20% (w/w) of OV-275 on Chromosorb W-AW and which was run at 50 C at 30 ml/min flow rate of He. Under these conditions, chloro ethylene oxide had a retention time of 2.2 min, chloroacetaldehyde of 3.6 min and ethylene oxide of 0.5 min.
GC~mass spectrometry An LKB2091 GC~mass spectrometer system was used for the E.I. spectra
and a Dupont 21-491B GC--mass spectrometer system for C.I. spectra.
Mass fragmentometry In the case of the methyl ester of /V-acetyl-S-(2-hydroxyethyI)cysteine
(Fig. 2), 3 selected ions of known m/e value were m/e 203 corresponding to M--H20, m/e 162 corresponding to M--C02CH3 and m/e 144 corresponding to M--H20--C02CH3. The 6% OV-101 column was used and run at 195C. Under these conditions, the methyl ester of JV-acetyl-S-(2-hydroxyethyl)cysteine had a retention time of 5.6 min.
In the case of the dimethyl ester of the ALtrifluoroacetyl derivative of S-(carboxymethyl)cysteine (Fig. 3), the selected ions were m/e 303 corre sponding to the molecular ion, m/e 271 corresponding to M--CH3OH and m/e 244 corresponding to M--C02CH3. The column, used in the gas chroma tograph, was one (2.7 m longX 2 mm internal diameter) which was packed with 20% (w/w) of OV-275 on Chromosorb W-AW and which was run at 250C. Under these conditions, the dimethyl ester of the AT-trifluoroacetyl derivative of S-(carboxymethyl)cysteine has a retention time of 5.4 min (Fig. 3).
Mutagenicity test The mutagenic potential of S-(2-hydroxyethyl)cysteine and of S-(2-chlo-
roethyI)cysteine was assessed by the method of Ames et al. [14] usings, typhimurium strains TA1535, TA1538, TA98 and TA100.
RESULTS AND DISCUSSION
/V-Acetyl-S-(2-hydroxyethyl)cysteine is a major vinyl chloride metabolite in rats, but dependent upon the method of derivative formation that was used so either Ar-acetyl-5-(2-chIoroethyI)cysteine (b) (Fig. 4) or /V-acetyl-S-
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(a)
OH K I .H
^C-C
H^l XH SR
+OH
--
-OH*
(c I
H2C-CH2
sI
CH,
*cf
-Cl'
CHINHAOCC^H
-H
(b) Cl
"'C-
SR
145
RS^ Idl
Fig. 4. Scheme for the interrelationship of some S-containing vinyl chloride metabolities.
(2-hydroxyethyl)cysteine (a) was isolated from the body fluids of vinyl chlo ride-treated animals. Thus, e.g. the O-methyl ester of lV-acetyl-S-(2-chloroethyl)cysteine (b) was obtained if the Fischer--Speier reaction with methanol was employed for the purpose of esterification, whereas the O-methyl ester of N-acetyl-S-(2-hydroxyethyl)cysteine (a) was produced if diazomethane was used instead. The mass spectrum of the O-methyl ester of JV-acetyl-S-(2chloroethyl)cysteine (b) was identical with that of the authentic substance [8]. It is noteworthy that the molecular ion (M* = 239) was absent from the conventional mass spectrum. Similarly, the mass spectrum (Fig. la) of the O-methyl ester of JV-acetyliS-(2-hydroxyethyl)cysteine (a) (Fig. 4) was iden tical with that of authentic material [8], and again, the molecular ion (M+ = 221) was absent from the conventional mass spectrum, but the (M + 1)* ion could be recognized in the mass spectrum, when the chemical ionization source was used in the GC--mass spectrometer system. Furthermore, treat ment of the O-methyl ester of N-acetyl-S-(2-hydroxyethyl)cysteine (a) with the methanol--HC1 reagent furnished a mixture of the O-methyl esters of AT-acetyl-iS-(2-chloroethyl)cystein (b) and S-(2-chloroethyl)cystein of which the mass spectra were identical with those of the authentic substances [5]. Conversely, the O-methyl ester of N-acetylTS-(2-chloroethyl)cystein (b) was hydrolysed rapidly by water to the O-methyl ester of 7V-acetyl-S-(2-hydroxyethyl)cysteine (a).
There is a strong supposition that the reversible reaction processes con necting the substances, iV-acetyl*S-(2-hydroxyethyl)cysteine (a) and iV-acetyl-S-(2-chIoroethyl)cysteine (b), are modulated through the intermediacy of episulphonium ion (c) (Fig. 4), and on this basis, e.g. the formation of (c) would be rate-determining in respect of the hydrolysis of (b). Moreover, nucleophilic attack of hydroxyl ion on the episulphonium ion (c) would be expected to afford olefine through ^-elimination [15]. In fact, a small yield of a second product, IV-acetyl-S-vinylcysteine (d), was recovered from the urine of [14C]vinyl chloride-treated animals, whenever diazomethane esterifi
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cation was used for protecting the S-containing metabolites. The mass spec trum of the O-methyl ester of A-acetyl-S-vinylcysteine was identical with that of authentic material [9], In this case, the molecular ion (M* = 203) was produced by electron impact (Fig. lb).
Manipulation of the S-containing metabolites of vinyl chloride revealed them to be highly reactive substances with a specialized chemistry. Thus, the reaction of the O-methyl ester of M-acetyl-S'-(2-hydroxyethyl)cysteine with methanol at neutral pH is noteworthy. While the molecular ion (M* = 235) was absent from the conventional mass spectrum, the (M+l)* ion could be recognized in the mass spectrum, when chemical ionization was used as the ion source. In another situation, (i) the loss of label from thin-layer plates containing a mixture of the O-methyl esters of IV-acetyl-S-(2-methoxy[l4C]ethyl)cysteine and A-acetyl-S-[l4C] vinylcysteine, and (ii) the presence of l4C in the methanol solvent peak of the GC trace of the 2 labelled compounds, indicate their ready transformation under mild conditions of reaction. A volatile product has been identified by mass spectrometry as either [,4C]S(2-methoxyethyl)(prop-l or 2-enyl)sulphide. Whilst the mechanism of for mation has not been investigated, it is felt that acetaldehyde, a known dissociation product of S-vinylcysteine-derived S-vinylcysteine-S-oxide [9] might be involved in a concerted condensation reaction with A-acetyl-S(2-methoxy [ l4C] ethyl)-cysteine, (leading to possible elimination of glyoxylate).
Since the S-containing vinyl chloride metabolites that generate the episulphonium ion (c) (Fig. 4) do not behave as mutagens in S. typhimurium strains, their further investigation was considered to be unrewarding.
At this stage in the work, it seemed important to investigate the biogenesis in the mammal of the S-containing vinyl chloride metabolites. Initially, we sought to determine whether S-(2-hydroxyethyl)cysteine would serve as a source of thiodiglycollic acid, and we were able to isolate the authentic sub stance [5] in 0.5% theoretical yield from the urine of rats dosed with S-(2hydroxyethyl)cysteine. This result seemed to be highly significant, because of the previously-described instability of that compound under exceedingly mild conditions of reactions. Furthermore, the metabolic pathway (Fig. 5) concerned, which appears to include end-group oxidation, amino acid trans amination and oxidative decarboxylation, admits of other sources for thiodi-
h^COI H-CHj
HOjC-'CH,
H0?C-CH?
(III)
SICHjCOjHI^
CH, CH,
CHINHjICC^H
CHINHjICOjH
C-COjH
0
Fig. 5. Scheme suggesting the biotransformation of S-(2-hydroxyethyl)cysteine into thio diglycollic acid. (I) End-group oxidation, (II) transamination; (III) oxidative decarboxyla tion.
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glycollic acid formation. The fact that high yields (Table I) of thiodiglycollic acid (j) (Fig. 6) were obtained in rats, which were dosed separately with chloroacetaldehyde (g), chloroacetic acid (h) and S-(carboxymethyl)cysteine (i) (Fig. 6) suggested that these compounds might lie on a common metab olic pathway connecting vinyl chloride (e) with thiodiglycollic acid (j) and possibly with the other S-containing metabolites, namely Af-acetyl-S-(2-hydroxyethyl [cysteine and (V-acetyl-S-vinylcysteine.
Nevertheless, further experimental evidence suggests that the inclusion of chloroacetic acid (h) (Fig. 6) on this metabolic pathway may be incorrigible. Thus, (1) very little chloroacetic acid, <0.1% of the dose, has ever been detected in the body fluids of any of our vinyl chloride-treated rats, and this fact implies either a high rate of turnover for (h) or the possibility that this substance is not a major vinyl chloride metabolite. The latter supposition now seems the more likely, particularly since relatively large amounts of chloroacetic acid have been found [16] in the body fluids of rats, treated with vinylidene chloride, and in those animals, thiodiglycollic acid accounted for an even higher proportion of the dose than in parallel experiments with vinyl chloride. (2) A feasible metabolic pathway of thiodiglycollic acid from chloroacetic acid and involving cysteine desulphydrase [E.C. 4.4.1.1] has now been shown to be unacceptable in experiments with unlabelled vinyl chloride in rats, in which the cysteine--cystine pools had been labelled ade quately with [14C]. The formation of labelled thiodiglycollic acid showed that a part of the C-skeleton must be derived in fact from cysteine. (3) More over in rats treated with chloroacetaldehyde, the presence of thiodiglycollic acid (j) (Fig. 6) and of jV-acetyl-S-(2-hydroxyethyl)cysteine, but not of chlo roacetic acid (h), amongst the urinary metabolites has been established by mass fragmentometry (Fig. 2).
Hence, there is a strong supposition that in rats chloroethylene oxide (f) (Fig. 6) is formed from vinyl chloride [17] and transformed spontaneously into chloroacetaldehyde (g) [18]; there is supporting evidence [1--3] for vinyl chloride epoxidation in vitro. The biological interrelationship of gluta thione S-epoxide transferase [EC 4.4.1.7] and substrate epoxide is well
TABLE I
RELATIVE PROPORTIONS OF THIODIGLYCOLLIC ACID IN THE URINE OF RATS DOSED INTRAGASTRICALLY WITH VARIOUS METABOLITES OF VINYL CHLO RIDE
Vinyl chloride metabolites
Yield of thiodiglycollic acid (% of the dose)
S-( 2-hydroxyelhyl)cysteine Chloroacetaldehyde Chloroacetic acid S (carboxy me thy l)cyslcine
0.5 9.2 31.0 20.0
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te> (()
(g)
<h)
c<j'
H^-CHCI-------- 'H2C-CH--------- CICHjCHO-------- 11------CICl^COOH
&
I CH-CHjSC^CHO
NH I
/ +GSH /
/ /
COzH CHCK^SCHjC^
NH(AC) OH
-OH -K)H
Ci O`,H CHCHjSCH^H NHj
Ul
R-S' I i
^CH,
OCHjSCl^COjH
-H+
R'S-CH, H/ 1
SICHjCO^H), (j)
Fig. 6. Scheme for the biogenesis of S-containing vinyl chloride metabolites.
known, and the fact that chloroacetaldehyde affords in vivo both thiodiglycollic acid and iV-acetyI-S-(2-hydroxyethyl)cysteine infers that vinyl chloride metabolism involves a reaction between glutathione and chloroethylene oxide or chloroacetaldehyde (Fig. 6). This suppostion is supported by the identification, by mass fragmentometry, of S-(carboxymethyl )cysteine (i) (Fig. 6) amongst the hydrolytic products prepared from an hepatic extract from vinyl chloride-treated animals. Since chloroacetaldehyde and chloro ethylene oxide are mutagens in S. typhimurium strains [19--21] and in
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Chinese hamster V79 cells [22], both of these substances may contribute substantially to vinyl chloride carcinogenicity in mammals.
However, it ought to be explained that the proposed enzymic reaction between glutathione and chloroethylene oxide, catalysed by glutathione S-epoxide transferase, would give a product, which is unlikely to be stable in the isolation procedure. In fact, the reaction product of the terminal cysteinyl residue undergoes ring-closure (on hydrolysis) to afford 1,4-thiaz-lene-6-carboxylic acid.
The foregoing evidence suggests a scheme (Fig. 6) which is economical in respect of primary biotransformations, for the biogenesis of vinyl chloride S-containing metabolites. It now (cf. ref. 5) seems unlikely that glutathione reacts directly with vinyl chloride (e) (Fig. 6) as well as with chloroethylene oxide (f) or its chloroacetaldehyde (g) transformation product, and present work provides convincing evidence for a metabolic pathway, involving chlo roethylene oxide and chloroacetaldehyde, for vinyl chloride in the living mammal.
ACKNOWLEDGEMENTS
We thank Miss C. Pamela Hudson , for her unstinting help and splendid technical assistance. We should also like to thank our colleague, Dr. J.A. Styles, for testing the mutagenicity of S-containing vinyl chloride metab olites.
REFERENCES
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2 A. Barbin, H. Bresil, A. Croisy, P. Jacquignon, C. Malaveille, R. Montesano and H. Bartsch, Liver microsome-mediated formation of alkylating agents from vinyl bro mide and vinyl chloride, Biochem. Biophys. Res. Commun., 67 (1975) 596.
3 H. Bartsch and R. Montesano, Mutagenic and carcinogenic effects of vinyl chloride, Mutat. Res., 32 (1975) 93.
4 H. Kappus, H.M. Bolt, A. Buchter and W. Bolt, Liver microsomal uptake of [,4C] vinyl chloride and transformation to protein alkylating metabolites in vitro, Toxicol. Appl. Pharmacol., 37 (1976) 461.
5 T. Green and D.E. Hathway, The biological fate in rats of vinyl chloride in relation to its oncogenicity, Chem.-Biol. Interact., 11 (1975) 545.
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7 W.C.J. Ross, Biological Alkylating Agents, Butterworths, London, 1962, pp. 10,11, 51,52,174,175.
8 J.F. Carson and F.F. Wong, The synthesis of L-l,4-thiazine-3-carboxylic acid 1-oxide, J. Org. Chem., 29 (1964) 2203.
9 E. Dabritz und A.I, Virtanen, S-vinyl-cystein-S-oxyd, Ein Homologes zur Vorstufe der tranentreibenden Substanz der Zwiebel, Chem. Ber., 98 (1965) 781.
10 L. Michaelis and M.P. Schubert, The reaction of iodoacetic acid on mercaptans and amides. J. Biol. Chem., 106 (1934) 331.
11 U. Rannug, R. Gothe and C.A. Wachtmeister, The mutagenicity of chloroethylene oxide, chloroacetaldehyde, 2-chloroethanol and chloroacetic acid, conceivable metab
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olites of vinyl chloride, Chem.-Biol. Interact., 12 (1976) 251. 12 M.K. Johnson, Preparation of deproteiniscd tissue extracts for chromatography and
assay of compounds related to glutathione, J. Chromatogr., 23 (1966) 474. 13 S.U. Gurani, U.S. Kumta and M.B. Sahasrabudhe, Influence of formic acid on the
hydrolysis of tissue proteins; a new and rapid method of hydrolysis of proteins, Biochim. Biophys. Acta, 16 (1955) 553. 14 B.N. Ames, J. McCann and E. Yamasaki, Methods for detecting carcinogens and mutagens with the Salmonella/mammalian-microsome mutagenicity test, Mutat, Res., 31 (1975) 347. 15 A.G, Ogston, E.R. Holiday, J.S.L. Philpot and L.A. Stocken, The replacement reac tions of |3/3,-dichlorodiethylsulphide and of some analogues in aqueous solution: the isolation of /5-chloro-/J'-hydroxydiethylsulphide, Trans. Faraday Soc., 44 (1948) 45. 16 B.K. Jones and D.E. Hathway, The biological fate of vinylidene chloride in rats, in press. 17 B.L Van Duuren, On the possible mechanism of carcinogenic action of vinyl chloride, Ann., N.Y. Acad. Sci., 246 (1975) 258. 18 H. Gross und J. Freiburg, Zur Existenz von Chlorathylenoxid, J. Prakt. Chem., 311 (1969)506. 19 H. Bartsch, C. Malaveille and R. Montesano, Human, rat and mouse liver-mediated mutagenicity of vinyl chloride in S typhimurium strains, Int, J. Cancer, 15 (1975) 429. 20 C. Malaveille, H. Bartsch, A. Barb'in, A M. Camus, R. Montesano, A. Croisy and P. Jacquignon, Mutagenicity of vinyl chloride, chloroethylene oxide, chloroacetaldehyde and chloroethanol, Biochem. Biophys. Res. Commun., 63 (1975) 363. 21 J. McCann, V. Simon, Streitwieser and B.N. Ames, Mutagenicity of chloroacetal dehyde, a possible metabolic product of 1,2-dichloroethane (ethylene dichloride), chloroethanol (ethylene chlorohydrm), vinyl chloride and cyclophosphamide, Proc. Natl. Acad. Sci. USA, 72 (1975) 3190 22 E. Hubeman, H, Bartsch and L. Sachs, Mutation induction in Chinese hamster V79 cells by two vinyl chloride metabolites, chloroethylene oxide and chloroacetaldehyde, Int. J. Cancer, 15 (1975) 539.
CUSAROSS 01868
Environmental Health Perspectives
Vol. 21, pp-
1977.
COMPARATIVE MAMMALIAN METABOLISM OF VINYL AND VINYLIDENE CHLORIDES IN RELATION TO ONCOGENIC POTENTIAL*
*
by David E Hathway
Elucidation of the role of vinyl chloride metabolites in the various reaction sequences which comprise the metabolic pathway, including the interaction of reactive metabolites with some purine and pyrimidine residues of target-organ DNA, provides some explanation for the (oncogenic) properties associated with the original substance. Comparative investigation of the biological fate of vinylidene chloride reveals (a) an agent of low oncogenic potential which is likely to be damaging only under special circumstances, and (b) species differences which suggest that the mouse is more susceptible than the rat towards vinylidene chloride oncogenicity.
* Imperial Chemical Industries Limited, Central Toxicology Laboratory, Alderley Park, Cheshire SK10 ATJ, England.
+ Lecture delivered in the Symposium on Comparative Metabolism and Toxicity of Vinyl Chloride Related Compounds (NIEHS), held at Bethesda,
CCSAROSS 01869
2
The research work with which this communication is concerned is based on the idea that knowledge of the biology of the reactive metabolites of chemical carcinogens in the mammal, including the precise nature of the chemical changes to the DNA of the nucleus, ought to give an insight into the (oncogenic) properties of the parent compounds.
In tracer studies, N-acetyl-S-(2-hydroxymethyl)cysteine was shown to
be a major vinyl chloride metabolite in rats, but according to the method
of protective esterification that was used so a derivative either of
N-acetyl-S- (2-chloroethyl)cysteine or of N-acetyl-S-(2-hydroxyethyl)cysteine
was isolated from body fluids (1, 2). Thus, by Fischer-Speier methy-lation,
N-acetyl-*S-(2-chloroethyl) cysteine was obtained, and with diazomethane,
N-acetyl-S-(2-hydroxyethyl)cysteine. It might be stated en passant that
throughout the investigations described, mass spectrometry, involving E,I.
and chemical ionisation sources and multiple-ion detection and all
combinations of these facilities, was used extensively both for product
identification and analysis and for the purposes of detection. Treatment
Fig. 1
of the ^-methyl ester of N-acetyl-S-(2-hydroxyethyl)cysteine (a)(Fig. 1)
near here with the methanol-HCL reagent gave a mixture of N-acetyl-S-(2-chloroethyl)
cysteine (b), and S-(2-chloroethyl)cysteine, and conversely, the O-methyl
ester of N-acetyl-S-(2-chloroethyl)cysteine (b) was hydrolysed rapidly
by water to that of N-acetyl-S-(2-hydroxyethyl)cysteine (c) (2). Hence,
the reversible reaction processes connecting the two substances would seem
to be modulated through the intermediacy of episulphonium ion (c) and
formation of this ion would in fact be rate-limiting in respect of the
hydrolysis of N-acetyl-S-(2-chloroethyl)cysteine. Nucleophilic attack of
OH on the episulphonium ion would be expected to give olefin (3), and in
fact, N-acetyl-S-vinylcysteine (d) was recovered from the urine of vinyl
CUSAROSS 01870
J
chloride-treated animals whenever diazomethane esterification was used to protect S-containing metabolites.
Surprisingly, N-acetyl-S^(2-hydroxyethyl)cysteine O-raethyl ester was methylated with neutral methanol, and the O-methyl esters of N-acety1-S-(2-methoxy]ethy 1) cysteine plus N-acety 1-S-[]vinyl-cysteine degrade to give the volatile [ 1A u]S-(2-methoxyethyl)(prop-1 or 2-enyl) sulphide. Although the mechanism of formation was not investigated, we felt that acetaldehyde, a known dissociation product of S-vinylcysteinederived S^vinylcysteine-S-oxide (4) might undergo concerted condensation with N-acetyl-S-(2-methoxyethyl)cysteine leading to elimination of thermodynamically stable glyoxylate. [There is an analogy for such a concerted condensation reaction in the work of Dabritz & Virtanen (4) on the tear-producing volatile components of the onion.]
The half-mustard ^-containing metabolites of vinyl chloride did not behave as mutagens in the Ames test (2).
Thiodiglycollic acid is another major vinyl chloride metabolite (1) .
Fig. 2 near here
In order to determine whether vinyl chloride yielded chloroethylene oxide in vivo, the biogenesis of several vinyl chloride metabolites and related compounds were investigated in rats (2). -(2-Hydroxyethyl)cysteine gave 0.5X of the authentic thiodiglycollic acid, and this result was seen to be highly significant, because of the instability (v. supra) of the starting material under exceedingly mild conditions of reaction. The metabolic pathway concerned (Fig. 2) appears to include end-group oxidation, amino-acid transamination and oxidative decarboxylation, and the results
jid S'S'oyvs'i)
4
Fig. 3 near here
chloroacetic acid (h), and S^(2-carboxymethyl)cysteine (i) might lie on a conuion pathway connecting vinyl chloride (e) with thiodiglycollic acid (j).
However, other evidence implies that chloroacetic acid (h) does not belong
to this metabolic pathway (e-j) (Fig.3). Thus, (i) 40.1% has even been
detected in the body fluids of any of our vinyl chloride-treated animals.
Either there is a high rate of turn-over or this compound is not a major
vinyl chloride metabolite. The latter possibility seems more likely,
since relatively large amounts are produced in vinylidene chloride
metabolism, and in those animals, thiodiglycollic acid accounts for an
even greater proportion of the dose than in parallel experiments with
vinyl chloride. (ii) A feasible metabolic pathway for thiodiglycollic acid
from chloroacetic acid and involving cysteine desulphhydrase is unacceptable.
Experiments with unlabelled vinyl chloride in rats in which the cysteine-
cystine pools had been labelled adequately with
gave [^Cjthiodiglycollic
acid, showing that a part of the C-skeleton must be derived in fact from cysteine. (iii) In rats treated with chloroacetaldehyde, the presence of thiodiglycollic acid and N-acetyl-S-(2-hydroxyethyl)cysteine, but not of chloroacetic acid, amongst the urinary metabolites was established by mass fragmentometry.
Thus, it is probable that in vivo chloroethylene oxide (f) (Fig.3) was formed (5) from vinyl chloride (e) and transformed spontaneously (6) into chloroacetaldehyde (g); there is supporting evidence (7-10) for vinyl chloride epoxidation iji vitro. This supposition is supported by the fact (A) that chloroacetaldehyde affords both N-acetyl--(2-hydroxyethyl) cysteine and thiodiglycollic acid jin vivo and (B) that S-(2-carboxymethyl) cysteine has been identified by mass fragmentometry amongst the hydrolytic products of an hepatic extract prepared from vinyl chloride-treated animals.
C l ISA ROSS 01872
Since chloroacetaldehyde and chloroethylene oxide are mutagenic in the Ames test (11-13) and in Chinese hamster V79 cells (14), they may be relevant to vinyl chloride carcinogenicity.
Respective formation of 33-D-ribofuranosylimidazo-[2,l-i Jpurine or
63-D-ribofuranosyl-5-oxo-5,6-dihydroimidazo-[1,2-c]pyrimidine from
adenosine or cytidine by reaction with chloroacetaldehyde (15) or
chloroethylene oxide was readily confirmed. The presence of these two
imidazo-nucleoside derivatives has now been established by mass
fragmentometry (16) in the enzymic hydrolysate of modified rat-liver DNA,
prepared from rats, which had been exposed chronically to vinyl chloride
Fig. 4 ar here
(250 ppm in their drinking water) for 1 year (Fig. 4). A smaller proportion of the 36-D-ribofuranosylimidazo-[2,l-i]purine, than would have
been expected to have been formed, was found both in the animal experiments
with vinyl chloride and in model reactions between chloroacetaldehyde
and calf-thymus DNA (16). This observation is consistent with some degree
of DNA depurination brought about by the reaction of vinyl chloride, and
in our model experiments, we have found evidence for the presence of the
detached purine. Viz. imidazo-[2,l-i]purine. Hence, the alkylation that
produces imidazo-derivative formation (with DNA) labilizes the N^
purine 3-glycoside linkage, which leads to. depurination. The gap so
produced might then be filled by various bases, resulting in 'mispairing'
during DNA replication. These results are very important, because in
general, there is excellent agreement between the severe damaging effect
of depurination to DNA and mutagenicity (17-19).
Thus, in retrospect, one would suspect vinyl chloride of being mutagenic/
carcinogenic.
CUSAROSS 01873
6
On che other hand, vinylidene chloride (a) (Fig. 5) metabolism in
Fig. 5
rats gave thiodiglycollic acid (g) and an N-acetyl--cysteiny1-acetyl
near here derivative (e) as major urinary metabolites, plus substantial amounts of
chloroacetic acid (b), dithioglycollic acid (j) and thioglycollic acid (h)
(20). It is probable that chloroacetic acid (b), which is a vinylidene
chloride metabolite per se, lies on a major metabolic pathway for vinylidene
chloride (Fig. 5), since it affords several metabolites in common with
vinylidene chloride (20).
There is a strong supposition that detoxification of chloroacetic acid (b) is effected through a glutathione S^acyl transferase catalysed reaction process and ensuing degradative sequence for the resulting carboxymethylglutathione (d), and that this represents the principal metabolic pathway for chloroacetic acid and a major one for vinylidene chloride. Thiodiglycollic acid is the ultimate detoxification product, and previous work (2) established the biotransformation of S_-(2-carboxymethyl) cysteine (f) into that substance. A feasible metabolic pathway to thiodiglycollic acid from chloroacetic acid and involving cysteine desulphhydrase is unacceptable. In experiments (rats) with unlabelled vinylidene chloride in which the cysteine-cystine pools had been labelled with ^C, labelled thiodiglycollic acid resulted, and a part of the C-skeleton of that substance must be derived in fact from cysteine (20). Formation of a small amount of [^Cjdithioglycollic acid (j) (and hence of the intermediate [^C]thioglycollic acid) (h) is reconcilable with the action of Michaelis's (21) unspecific S-thionase, which would lyse a small proportion of the preponderating [^Cjthioglycollic acid (v. infra)
CUSAROSS 01874
7
Moreover, Kolbe electrolysis (22) of one molecular proportion of the [^C Jthiodiglycollic acid metabolite from [l-^C]l, l~dichloroethylene or
[l-^C]chloroacetic acid gave 1 equivalent of
and this evidence
is consistent with the transformation of vinylidene chloride into chloroacetic acid by a mechanism involving migration of one Cl_ atom and the loss of the other one (20, 23). Hence, the metabolic pathway (Fig. 5), which was tentatively proposed for the biotransformation of vinylidene chloride into thiodiglycollic acid does in fact operate in rats.
It is equivocal whether the very small amounts of CO2 and urea are produced by the action of epoxide hydratase on 1,1-dichloroethylene oxide or by a minor oxidative pathway for chloroacetic acid.
There is a strong supposition that the N-acetyl-S-cysteinylactyl
derivative (e) (Fig.5), which is a metabolite of vinylidene chloride, but
not of chloroacetic acid, may be formed in fact from 1,1-dichloroethylene
oxide through the agency of glutathione ^-epoxide transferase to afford
S-glutathione acetyl chloride (c) and its subsequent reactions (20).
This supposition is important, since the reactivity displayed by
1,1-dichloroethylene oxide (v..supra) appears to be relevant to the possible
interaction of reactive vinylidene chloride metabolites with mouse-kidney
Fig. 6
DNA (Fig. 6), which is a prerequisite of tumour initiation (24). Such
near here interaction would be analogous to that of vinyl chloride with rat-liver
DNA vivo, which forms imidazo derivatives with some nucleoside residues
(16). Further work in progress to investigate this hypothesis.
CUSAROSS 01875
8
Fig. 7 near here
Comparative studies (25) provide clues of differences between rats and mice in the processing of vinylidene chloride (Fig, 7). Thus, in mice, the production of thiodiglycollic acid is considerably reduced and the formation of the N-acetyl~-cysteinylacetyl metabolite is increased. The higher 0-thiomase activity in mice than in rats accounts for the greater conversion of thiodiglycollic acid into dithioglycollic acid via thioglycollic acid in the former species of animal. Yllner's (26) mice excreted a proportion of a dose of chloroacetic acid as unchanged starting acid. Thus, in mice, the metabolic pathway from chloroacetic acid to thiodiglycollic acid seems to be readily saturable, possibly on account of an inadequacy in the reaction catalysed by glutathione S^acyl transferase. Under these circumstances, detoxification of 1,1-dichloroethylene oxide by glutathione S-epoxide transferase and the modification of DNA by 1,1-dichloroethylene oxide or chloroacetyl chloride would be expected to be more significant in mice than in rats. This diagnosis of species susceptibility seems to accord with Maltoni's (24) discovery of vinylidene chloride oncogenicity in (the kidneys of) mice,
Vinylidene chloride emerges as an agent of low, perhaps very low, oncogenic potential, which can be damaging only in a special set of biological circumstances, which we have partially defined (v. supra) and on which work is continuing.
CUSAROSS 0187ft
9
acknowledgement
The author is indebted to his colleagues Messrs T Green, and B K Jones, Drs A G Salmon and P L Batten, and Mr G H Walker for their invaluable contributions and help.
CUSAROSS 01877
references
1. Green, T., and Hathway, D.E., The biological fate in rats of vinyl chloride in relation to its oncogenicity, Chem.-Biol. Interactions 11: 545 (1975).
2. Green, T., and Hathway, D.E., The chemistry and biogenesis of S-containing metabolites of vinyl chloride in rats, Chem-Biol, Interactions, 7: 137 (1977).
3. Ogston, A.G. et al., The replacement reactions of B8'-dichlorodiethyl sulphide and of some analogues in aqueous solution: the isolation of B-chloro-8'~hydroxydiethylsulphide, Trans. Faraday Soc., 44: 45 (1948).
4. Dabritz, E. and Virtanen, A.jI., IS-Vinyl-cystein-jl-oxyd, ein Homologes (I
zur Vorstufe der tranentreibenden Substanz der Zwiebel, Chem. Ber., 98: 781 (1965).
5. Van Duuren, B.L., On the possible mechanism of carcinogenic action of vinyl chloride, Ann. New York Acad. Sci., 246: 258 (1975).
tv 6. Gross, H., and Freiburg, J,, Zur Existenz von Chlorathylenoxid,
J. prakt. Chem., 311: 506 (1969).
7. Runnug, U., et_ al_., The mutagenicity of vinyl chloride after metabolic activation, AMBIO, J3: 194 (1974).
8. Barbin, A., et_ l., Liver-microsome mediated formation of alkylating agents from vinyl bromide and vinyl chloride, Biochem. Biophys. Res.
CUSAROSS 01878
11
9. Greim, H., et al. Mutagenicity in vitro and potential carcinogenicity of chlorinated ethylenes as a function of metabolic oxirane formation, Biochem. Pharmacol., 24_: 2013 (1975).
10. Salmon, A.G., Cytochrome P450 and the metabolism of vinyl chloride, Cancer Lett., 2_: 109 (1976).
11. Bartsch, H., Malaveille, C., and Montesano, R., Human, rat and mouse liver-mediated mutagenicity of vinyl chloride in S. typhimurium strains, Int. J. Cancer, 15: 429 (1975).
12. Malaveille C., et al.. Mutagenicity of vinyl chloride, chloroethylene oxide, chloroacetaldehyde and chloroethanol, Biochem. Biophys. Res. Comm., 65: 363 (1975).
13. McCann, J., et al,, Mutagenicity of chloroacetaldehyde, a possible metabolic product of 1,2-dichloroethane (ethylene dichloride), chloroethanol (ethylene chlorohydrin^ vinyl chloride and cyclophosphamide, Proc. Nat. Acad. Sci. USA, 72: 3190 (1975).
14. Huberman, E., Bartsch, H., and Sachs, L., Mutation induction in Chinese hamster V79 cells by two vinyl chloride metabolites, chloroethylene oxide and chloroacetaldehyde, Int. J. Cancer, 15: 539 (1975).
15. Barrio, J.R., Secrist, J.A., and Leonard, N.J., Fluorescent adenosine and cytidine derivatives, Biochem. Biophys. Res. Comm., 46: 597 (1972).
CUSAROSS 01879
12
16. Green, T., and Hathway, D.E., Interactions of vinyl chloride with rat-
liver DNA
vivo, Chem.Biol. Interactions, in the press.
17. Lawley, P.D., et_ al., Inactivation of bacteriophage T7 by mono-and di-functional sulphur mustards in relation to cross-linking and depurination of bacteriophage DNA, J. Mol. Biol., 39: 181 (1969).
18. Roberts, J.J., Nucleic acid modifications and cancer, In: 'Biology of Cancer', E. J. Ambrose and F.J.C. Roe, Eds., Halstead Press, Chichester, 2nd ed., 1975.
19. Loveless, A., Genetic and Allied Effects of Alkylating Agents, Butterworths, London, 1966.
20. Jones, B.K. and Hathway, D.E., The biological fate of vinylidene chloride in rats, Chem-Biol. Interactions, in the press.
21. Michaelis, L., and Schubert, M.P., The reaction of iodoacetic acid on morcaptans and amides, J. Biol. Chem., 106: 331 (1934).
22. Kolbe, H., Untersuchungen uber die Elektrolyse organischer Verbincungen, Justus Liebigs Annalen der Chemie, 69: 257 (1849).
23. Walker, G.H. and Hathway, D.E., Electrochemical analysis of the [carboxy-*^C]aliphatic carboxylic acid metabolites resulting from tracer molecules, Biochem. J., in the press.
CUSAROSS 01880
13 24. Maltoni, C., Proceedings of the TAPPI International Conference, held
in Hamburg on January 26, 1977. 25. Jones, B.K. and Hathway, D.E., Differences between mice and rats in
the metabolism of vinylidene chloride, Brit. J. Cancer, in the press. 26. Yllner, S., Metabolism of chloroacetate-1-14C m the mouse, Acta
pharmacol. et toxicol., 30: 69 (1971).
CUSAROSS 01881
(a)
OH
HvXC-ci/(H
Wy i XH
SR
+0H
-OH
(c)
HoC-CHo
\l
4Cf
-Cl*
I CH9 Iz
CH(NHAc)C02H
H'
/H C=f
RS""
(d)
(b)
C!
H. I M
C-C^ H^l VH
SR
Fig. 1
Scheme for the interrelationship of some $_ containing vinyl chloride metabolites.
CUSAROSS 01882
OH I h2c-ch2
<l)
S
I
CHo
CH(NH2)C02H
ho2c-ch2
(II)
s
I
ch9 I CH(NH2)C02H
ho2c-ch2
(Hi)
s
I CHo
C-COoH u1
0
S(CH2C02
Fig. 2.
Scheme suggesting the biotransformation of -(2-hydroxyethyl) cysteine into thiodiglycollie acid. (I) End_group oxidation; (II) transamination; (III) oxidative decarboxylation.
CUSAROSS 01883
(e) (f)
<g)
ih)
--CICH2COOH
/ /
/ / / /
/
/ / /
/ +GSH
/ / / / /
C09H I2 chch2sch2ch2 NH(Ac) OH
-OH 40H
CH, R-S" I 2
^CH,
C09H I2 CHCH2SCH2C02H
NH2
(i)
CO?H I2 c-ch2sch2co2h
0
R-S C-Clij
H/
S(CH2C02H)2 (j)
Fig. 3 Scheme for the biogenesis of S-containing vinyl chloride metabolites
CUSAKOSS 01SS4
CtCHjHO
fyodifczd DNA
in ywo
'Modified'
i^do^te DNA 1
1
HO OH
tioc&o
HO OH
(tfti/ (tssocidz^d 4'dejinvinatio^
Fig. 4 Scheme suggesting the model reaction of chloroacetaldehyde with (calf-thymus) DNA and the biotransformation of hcpatocyte DNA by vinyl chloride ini vivo. Both reaction processes afford 66-D-ribofuranosyl-5-oxo~5,6-dihydroimidazo-[l,2-c]pyrimidine (lelt-hand side) and 3B~D-ribofuranosylimidazo-[2,1-iJpcrine
SAROSS 01885
AC (e)
CICKgCOjH
T
HOiI0C-CO, II `1
(go2h)2
1
C02
1
co(ni^)2
1, x
( HOgCCHCHgSCHgCOgH j
\ r\U
'
1
s(ch2co2h)2
i
ESCHgCOgH
1
(SCH2C02H)2
(s) (h)
(3)
Fig. 5 Scheme for vinylidene chloride mecabolism in rats. CUSAROSS 01886
Fig. 6. Scheme suggesting the feasible interaction of reactive vinylidene chloride metabolites, 1,1-dichloroethylene oxide and chloroacetyl chloride, with adenosine and cytidine respectively.
CUSAROSS 01887
METABOLISM
(I) of Chloroacetic acid
Metabolite
Rats
Chloroacetic acid
-
Thiodigly'coll ic acid
90
N-Acetyl-S-(2~carboxymethyl)cysteine 2
Mice
Yllner
BKJ-DEH
6-22%
-
37 30-40
40 40
Chloroacetic acid Thiodiglycol1ic acid Thioglycolli c acid Dithioglycollie acid N-Acctyl-S.-cysteinyl acetyl
derivative
(2) of Vinylidene chloride
337 3
35 5 20 48 70
Fig. 7.
The relative proportions of products resulting from the metabolism (1) of chloroacetic acid and (2) of vinylidene chloride in rats and mice.
CUSAROSS 01888