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在模拟人体暴露场景下,职业相关合金和金属粉末释放的镍和钴的生物可给性。

Bioaccessibility of Nickel and Cobalt Released from Occupationally Relevant Alloy and Metal Powders at Simulated Human Exposure Scenarios.

机构信息

KTH Royal Institute of Technology, School of Engineering Sciences in Chemistry, Biotechnology and Health, Department of Chemistry, Division of Surface and Corrosion Science, Drottning Kristinas v. 51, Stockholm, Sweden.

出版信息

Ann Work Expo Health. 2020 Jul 1;64(6):659-675. doi: 10.1093/annweh/wxaa042.

Abstract

Nickel (Ni) and cobalt (Co) release from chromium-alloy powders (different stainless steels and a nickel-based Inconel alloy) compared with Ni and Co metal powders was investigated at simulated human exposure scenarios (ingestion, skin contact, and inhalation) between 2 and 168 h. All investigated powders consisted of particles sized within the respirable range. The powder particles and their surface reactivity were studied by means of nitrogen adsorption and electrochemical, spectroscopic (X-ray photoelectron spectroscopy and atomic absorption spectroscopy), light scattering, and microscopic techniques. The release of both Ni and Co was highest in the acidic and complexing fluids simulating the gastric environment and an inhalation scenario of small powders (artificial lysosomal fluid). Relatively high corrosion resistance and lower levels of released Ni and Co were observed in all fluids for all alloy powders compared with the corresponding pure metals. The extent of released metals was low for powders with a passive surface oxide. This study strongly emphasizes the importance of considering alloying effects in toxicological classification and/or regulation of Ni and Co in alloys and metals.

摘要

研究了模拟人体暴露场景(摄入、皮肤接触和吸入)下 2 至 168 小时内,铬合金粉末(不同不锈钢和镍基因科镍合金)与镍和钴金属粉末的镍(Ni)和钴(Co)释放情况。所有研究的粉末都由可吸入范围内的颗粒组成。通过氮气吸附和电化学、光谱(X 射线光电子能谱和原子吸收光谱)、光散射和显微镜技术研究了粉末颗粒及其表面反应性。在模拟胃环境的酸性和络合流体以及小粉末(人工溶酶体流体)的吸入场景中,Ni 和 Co 的释放量最高。与相应的纯金属相比,所有合金粉末在所有流体中的耐腐蚀性相对较高,释放的 Ni 和 Co 水平较低。具有钝化表面氧化物的粉末释放的金属量较低。本研究强烈强调了在合金和金属中对 Ni 和 Co 进行毒理学分类和/或监管时考虑合金效应的重要性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8093/7328476/568e9d7a11a6/wxaa042if0001.jpg

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