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PMID: 7843140 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Toxicity, uptake, and mutagenicity of particulate and soluble nickel compounds.

Environmental health perspectives ·Vol. 102 Suppl 3 ·1994-09-00 ·Pages 69-79

Fletcher GG, Rossetto FE, Turnbull JD, Nieboer E

Abstract

Toxicity testing in AS52 cells (24-hr exposures) gave LC50 values of 2 to 130 micrograms Ni/ml for particulate nickel compounds and 45 to 60 micrograms Ni/ml for water-soluble salts (NiCl2, NiSO4, Ni(CH3COO)2). The Ni(OH)2, NiCO3, and sulfides (Ni3S2, Ni7S6, "amorphous NiS") exhibited similar toxicities (LC50's of 2 to 8 micrograms Ni/ml), while three nickel oxides were more variable and less toxic (LC50's of 18 to 130 micrograms Ni/ml). Most compounds displayed nuclear to cytoplasmic nickel ratios of approximately 1:1.5 to 1:5 (except approximately 1:20 for nickel salts). At the LC50's, a 75-fold range in exposure levels occurred compared to a 10-fold range in cytoplasmic and nuclear nickel concentrations, [Ni]. Cellular nickel distribution indicated three groupings: inert compounds (green NiO, lithium nickel oxide, relatively low nuclear and cytosolic [Ni]); water-soluble salts (very low nuclear [Ni]; high cytosolic [Ni]), and slightly soluble compounds (relatively high cytosolic and nuclear [Ni]). Nickel compounds are considered to be only weak or equivocal mutagens. In this study, a low but significant increase in mutation rate at the gpt locus was shown. Although the results would not be sufficient to deem nickel compounds mutagenic by traditional criteria, characterization by PCR analysis indicated that the spontaneous and nickel-induced mutants exhibited different and compound-specific mutational spectra (thus confirming nickel compound involvement). The results reported illustrate some of the methodologic problems involved in testing "weak" mutagens and indicate that alternative approaches may be necessary in classifying the mutagenicity of nickel and other compounds.

MeSH Terms
Animals Cell Line Mutagenicity Tests/methods Mutagens/metabolism,toxicity Nickel/metabolism,toxicity Particle Size Solubility
Chemicals
Mutagens Nickel
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Fletcher G G
Department of Biochemistry, McMaster University, Hamilton, Ontario, Canada.
Rossetto F E
Turnbull J D
Nieboer E
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Article Info
Journal
Environmental health perspectives
Abbr.
Environ Health Perspect
ISSN
0091-6765
Published
1994-09-00
Pages
69-79
Language
English
Region
United States
NLM ID
0330411
PMCID
PMC1567397
Subset
IM
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