Copper and Human Health: Biochemistry, Genetics, and Strategies for Modeling Dose-response Relationships

毒性 铜毒性 铜缺乏 范畴变量 不利影响 人类健康 化学 医学 计算生物学 计算机科学 药理学 生物 环境卫生 内科学 机器学习 有机化学
作者
Bonnie Stern,Marc Solioz,Daniel Krewski,Peter Aggett,T. C. Aw,Scott Baker,Kenny S. Crump,Michael Dourson,Lynne T. Haber,R.C. Hertzberg,Carl L. Keen,Bette Meek,Larysa Rudenko,Rita Schoeny,Wout Slob,Tom Starr
出处
期刊:Journal of Toxicology and Environmental Health-part B-critical Reviews [Taylor & Francis]
卷期号:10 (3): 157-222 被引量:357
标识
DOI:10.1080/10937400600755911
摘要

Abstract Copper (Cu) and its alloys are used extensively in domestic and industrial applications. Cu is also an essential element in mammalian nutrition. Since both copper deficiency and copper excess produce adverse health effects, the dose-response curve is U-shaped, although the precise form has not yet been well characterized. Many animal and human studies were conducted on copper to provide a rich database from which data suitable for modeling the dose-response relationship for copper may be extracted. Possible dose-response modeling strategies are considered in this review, including those based on the benchmark dose and categorical regression. The usefulness of biologically based dose-response modeling techniques in understanding copper toxicity was difficult to assess at this time since the mechanisms underlying copper-induced toxicity have yet to be fully elucidated. A dose-response modeling strategy for copper toxicity was proposed associated with both deficiency and excess. This modeling strategy was applied to multiple studies of copper-induced toxicity, standardized with respect to severity of adverse health outcomes and selected on the basis of criteria reflecting the quality and relevance of individual studies. The use of a comprehensive database on copper-induced toxicity is essential for dose-response modeling since there is insufficient information in any single study to adequately characterize copper dose-response relationships. The dose-response modeling strategy envisioned here is designed to determine whether the existing toxicity data for copper excess or deficiency may be effectively utilized in defining the limits of the homeostatic range in humans and other species. By considering alternative techniques for determining a point of departure and low-dose extrapolation (including categorical regression, the benchmark dose, and identification of observed no-effect levels) this strategy will identify which techniques are most suitable for this purpose. This analysis also serves to identify areas in which additional data are needed to better define the characteristics of dose-response relationships for copper-induced toxicity in relation to excess or deficiency. The authors are grateful to the referees and the editor for their constructive comments on this article. We also thank Nicole Boom for her careful reading of the final draft and Nagaraj Yenugadhati for his editorial assistance. D. Krewski is the NSERC/SSHRC/McLaughlin Chair in Population Health Risk Assessment at the University of Ottawa.
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