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Safety assessment of dichlorophene and chlorophene.

Dichlorophene is a halogenated phenolic compound that functions as a bacteriocide and fungicide in cosmetics. Chlorophene is a halogenated phenolic compound that functions as a biocide and preservative in cosmetics. Dichlorophene was reported to be used in a total of five cosmetic formulations at concentrations of 0% to 1.0%, but Chlorophene was not reported to be used. Dichlorophene is prohibited for use in cosmetic ingredients in Japan. In Europe, the maximum authorized concentration allowed for Dichlorophene is 0.5% and for Chlorophene is 0.2%. The major impurity of Dichlorophene is the trimer 4-chloro-2,6-bis(5-chloro-2-hydroxybenzyl)phenol. In rats, Dichlorophene sulfate, Dichlorophene monoglucuronide, and Dichlorophene diglucuronide were the major metabolites of Dichlorophene and were excreted, mainly in the urine. The glucuronic acid conjugate, the sulfate ester conjugate, and two minor metabolites of Chlorophene were the metabolites found in rat urine. Chlorophene was incompletely absorbed through the rat skin. These chemicals exhibited low toxicity in acute oral toxicity studies in several animal species. Some evidence of toxicity with both chemicals was found in short-term oral toxicity studies in mice and rats; nephropathy was the principal finding. Chronic toxicity data were not available for Dichlorophene. Rats and mice dosed with Chlorophene for 2 years had a dose-related and sex-related increase in the severity of nephropathy. In animal tests, Dichlorophene and Chlorophene were ocular irritants. No inhalation toxicity data were available for these ingredients. Dichlorophene up to 10% concentration resulted in no to minimal irritation when applied to the intact and abraded skin of rabbits. Chlorophene was severely irritating to rabbits in most dermal irritation studies. Studies on guinea pigs gave positive and negative results in sensitization tests of Dichlorophene. A dose-related contact hypersensitivity response to Chlorophene was reported in mice. No reproductive or developmental toxicity data were available for Dichlorophene, but there was some evidence of non-dose-dependent developmental toxicity with Chlorophene in rabbits. Dichlorophene was positive in the Ames mutagenicity assay, but not in mammalian or fruit fly test systems. Chlorophene was mutagenic in four in vitro mammalian test systems. Carcinogenicity studies for Dichlorophene were not found. Neoplasms were not observed in rats treated with Chlorophene for 2 years; however a significant incidence of neoplasms was observed in mice so treated. A 1-year National Toxicology Program (NTP) study concluded that Chlorophene was a cutaneous irritant and a weak skin tumor promoter but had no activity as an initiator or complete carcinogen. Dichlorophene was not a sensitizer in clinical dermal sensitization tests. Some reactions to Chlorophene occurred in some, but not all, clinical dermal sensitization tests. Positive photopatch tests to Dichlorophene were found in 13/469 patients. Although these ingredients were ocular irritants at high concentrations, the risk at concentrations which are actually used in cosmetic formulations was uncertain. Overall, the available data were insufficient to support safety of Dichlorophene or Chlorophene. Additional data needed include (1) method of manufacture and impurities data (especially the trimer in Dichlorophene); (2) photosensitization and photocarcinogenicity data for Dichlorophene; (3) dermal reproductive and developmental toxicity data for Dichlorophene (as a function of dose); and (4) ocular irritation at concentration of use, if available.

Administration, Cutaneous↗

Liquid chromatographic analysis of dichlorophen and its major impurity.

A rapid and simple high-performance liquid chromatographic (HPLC) method for the analysis of dichlorophen in raw material and in dichlorophen-toluene soft gelatin capsules for veterinary use was developed using a reverse-phase technique. This HPLC system was shown to isolate dichlorophen from its major impurity (the trimer). Three formulations were assayed and were found to contain 7.14, 7.90, and 8.4% of the trimer. A C-18 column was used with a mobile phase of methanol-water (75:25). The flow rate was 1.5 mL/min, and the effluent was monitored at 290 nm for both dichlorophen and the trimer. Dichlorophen and the trimer had retention times of 6.5 and 9.0 min, respectively.

Capsules↗

In vitro inhibition of Giardia lamblia and Trichomonas vaginalis growth by bithionol, dichlorophene, and hexachlorophene.

Bithionol, dichlorophene, and hexachlorophene, which are used in treating some helminthic infections, killed trophozoites of Giardia lamblia and Trichomonas vaginalis in modified BI-S-33 and Asami media, respectively. Virtually all G. lamblia and T. vaginalis cells were killed within 24 h with a 0.42 mM concentration of these compounds, except that 0.93 mM dichlorophene was required for sterilizing T. vaginalis in the same period. In modified BI-S-33 and Asami media from which bovine and human sera were omitted, respectively, the inhibitory actions of the compounds against in vitro growth of these protozoa were significantly enhanced. Trophozoites of G. lamblia and T. vaginalis could be killed in shorter than 10 min with 0.074 mM dichlorophene and 0.0025 mM hexachlorophene, respectively, in serum-free media. G. lamblia, which was incubated in the complete medium containing dichlorophene, showed a characteristic swelling of the ventral side which led to disruption of the parasite, whereas bithionol caused a thin crack in the cytoplasm of T. vaginalis incubated in Asami medium. The crack appeared to enlarge and result in vacuolization of T. vaginalis. These observations suggest that bithionol, dichlorophene, and hexachlorophene merit further evaluation to ascertain whether they are useful for treatment of giardiasis and trichomoniasis.

Animals↗

The treatment of fasciolopsiasis with niclosamide and dichlorophen.

Niclosamide and Dichlorophen have been tried in infection with F. buski in an endemic area of Bangladesh. Niclosamide is the commonly used agent for this condition, but was found to reduce the ova count by about 48.5% only and repeat treatment did not improve the result. Dichlorophen is advocated for tape worm, but was found to reduce the ova count by 83.3% and repeat treatment completely eradicated infection with F. buski.

Adolescent↗

Acute fatal poisoning with dichlorophen.

A case is presented involving an acute fatality resulting from self-administered dichlorophen, a chlorophenol fungicide. The compound was quantified using gas chromatography/mass spectrometry after extraction with methyl-tert-butyl ether, derivatization by methylation and separation on a HP5-MS capillary column. The blood concentration was 9.77 mg/l and other drugs, including ethanol, were not detected.

Dichlorophen↗

Solid state study of hydrogen bonding in dichlorophen crystals.

An X-ray crystallographic study of dichlorophen has been performed. Intramolecular hydrogen bonding is found within the molecule and intermolecular hydrogen bonding is present between molecules. The formation of dimers within the crystal lattice has been established.

Anticestodal Agents↗