Experimental justification of the maximum possible concentration (mpc) of dichlorohexafluorobutene in a working area
https://doi.org/10.47183/mes.2021.014
Abstract
To date, there have been no exposure standards for air concentrations of 1,4-dichlorohexafluorobutene (DCHF) in the work areas. The study was aimed to assess the toxicity of DCHF and to evaluate health hazard in acute, subacute, and chronic experiments. It was found that the substance was highly hazardous, DL50 in mice after intragastric injection was 79.0 mg/kg, СL50 was 229.0 mg/m3, and in rats these values were 86,0 mg/kg and 670,0 mg/m3. In animals, DCHF had a moderate local irritative effect on animal skin and ocular mucous membranes, as well as the skin resorptive effect. The 18.2 mg/m3 threshold limit concentration for a single inhalation exposure to DCHF was defined based on the changes in behavior responses and blood parameters. The 30-day subacute inhalation experiment revealed the pronounced cumulative effect of the substance. The 4-months chronic inhalation study showed that the exposure of experimental rats to 16.8 mg/m3 concentration of DCHF resulted in impaired function of central nervous system and cardiac activity, altered hematologic, biochemical, acid-base, and blood gas values, as well as in morphological alterations in lungs, which persisted after the 30-day recovery period. The chronic exposure threshold defined for DCHF was 2.2 mg/m3, and the defined no observable effect level was 0.24 mg/m3. Based on the study results, the maximum permissible concentration of DCHF in the air of the working area of 0.2 mg/m3 was confirmed and approved, the substance was assigned hazard class 2, vapor + aerosol + (specific protection of skin and eyes required). Gas chromatographic method using electron-capture detection for determination of DCHF mass air concentration in the work areas has been developed and approved.
About the Authors
I. E. ShkaevaRussian Federation
St. Petersburg
S. A. Dulov
Russian Federation
St. Petersburg
O. S. Nikulina
Russian Federation
St. Petersburg
S. A. Solnceva
Russian Federation
Svelana A. Solnceva
Kapitolovo, str. 93, r.p. Kuzmolovsky, Vsevolozhsky r., Leningradskaja obl., 188663
A. V. Zemlyanoi
Russian Federation
St. Petersburg
References
1. Uzhdavin Je.R. Toksikologija i gigiena vysokomolekuljarnyh soedinenij i himicheskogo syr'ja. M., 1966; s. 71–72. Russian.
2. Filov V.A., redaktor. Vrednye himicheskie veshhestva. Uglevodorody, galogenproizvodnye uglevodorodov: spravochnik. L.: Himija, 1990; 732 s. Russian.
3. Lazarev N.V., redaktor. Vrednye himicheskie veshhestva. Organicheskie veshhestva: spravochnik, T. 1. L.: Himija, 1976; 300 c. Russian.
4. Fluorocarbons in Lower Atmosphere. EOS Trans Amer Geophys Union. 1979; 60 (50): 1030.
5. RTECS(R) National Institute for Occupational Safety and Health. Canadian Centre for Occupational Health Safety, 2005. Aailable from: https://www.cdc.gov/niosh/index.htm.
6. Clayton J.W. Toxicology of the fluoroalkenes. Review and research needs Environmental Health Perspectives. 1977; 21: 255–67.
7. Lock E.A., Berndt W.O. Studies on the Mechanism of Nephrotoxicity and Nephrocarcinogenicity of Halogenated Alkenes. CRC Critical Reviews in Toxicology. 1988; 19 (1): 23–42.
8. Truhaut R., Boudene C., Jouany J., Bouant A. Experimental study of the toxicity of a fluoroalkene derivative, the hexafluorodichlorobutene (HFCB). Fluoride. 1972; 5 (1): 4–14.
9. Gizhlarjan M.S., Darbinjan N.A. Metabolicheskaja aktivacija hlorzameshhennyh nenasyshhennyh soedinenij. V sbornike: Tezisy dokladov 1-go Vses. s"ezda toksikologov, Rostov-na-Donu, 1986 g. Rostov-na-Donu, 1986; s. 293–4.
10. Dekant W., et al. Bacterial-lyase mediated cleavage and mutagenicity of cysteine conjugates derived from the nephrocarcinogenic alkenes trichloroethylene, tetrachloroethylene and hexachlorobutadiene. Chem-Biol Interact. 1986; 60: 31–45.
11. Anders M.W., et al. Biosynthesis and biotransformation of glutathione S-conjugates to toxic metabolites. CRC Crit Rev Toxicol. 1988; 18: 311–41.
12. Hayes J.D., Pulford D.J. The Glutathione S-Transferase Supergene Family: Regulation of GST* and the Contribution of the lsoenzymes to Cancer Chemoprotection and Drug Resistance Critical. Reviews in Biochemistry and Molecular Biology. 1995; 30 (6): 445–600.
13. Dreehen B., Westphal G. Mutagenicity of the glutathione and cysteine S-conjugates of the haloalkenes 1,1,2-trichloro-3,3,3-trifluoro-1-propene and trichlorofluoroethene in the Ames test in comparison with the tetrachloroethene-analogues. Mutation Research. 2003; 539: 157–66.
14. Predel'no dopustimye koncentracii (PDK) vrednyh veshhestv v vozduhe rabochej zony. Gigienicheskie normativy GN 2.2.5.1313 — 03. M.: RRPOHBV Minzdrava Rossii, 2003. Russian.
15. Predel'no dopustimye koncentracii (PDK) vrednyh veshhestv v atmosfernom vozduhe naselennyh mest. Gigienicheskie normativy GN 2.1.6.1338-03. M.: STK Ajaks, 2003. Russian.
16. Metodicheskie ukazanija po ustanovleniju orientirovochnyh bezopasnyh urovnej vozdejstvija v vozduhe rabochej zony. M., 1985. Russian.
Review
For citations:
Shkaeva I.E., Dulov S.A., Nikulina O.S., Solnceva S.A., Zemlyanoi A.V. Experimental justification of the maximum possible concentration (mpc) of dichlorohexafluorobutene in a working area. Extreme Medicine. 2021;23(2):53-58. https://doi.org/10.47183/mes.2021.014