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六价铬(Cr(VI))的健康危害及其微生物还原。

Health hazards of hexavalent chromium (Cr (VI)) and its microbial reduction.

机构信息

Environmental Research Institute, National University of Singapore, Singapore.

Energy and Environmental Sustainability for Megacities (E2S2) Phase II, Campus for Research Excellence and Technological Enterprise (Create), Singapore.

出版信息

Bioengineered. 2022 Mar;13(3):4923-4938. doi: 10.1080/21655979.2022.2037273.

Abstract

Industrial effluents/wastewater are the main sources of hexavalent chromium (Cr (VI)) pollutants in the environment. Cr (VI) pollution has become one of the world's most serious environmental concerns due to its long persistence in the environment and highly deadly nature in living organisms. To its widespread use in industries Cr (VI) is highly toxic and one of the most common environmental contaminants. Cr (VI) is frequently non-biodegradable in nature, which means it stays in the environment for a long time, pollutes the soil and water, and poses substantial health risks to humans and wildlife. In living things, the hexavalent form of Cr is carcinogenic, genotoxic, and mutagenic. Physico-chemical techniques currently used for Cr (VI) removal are not environmentally friendly and use a large number of chemicals. Microbes have many natural or acquired mechanisms to combat chromium toxicity, such as biosorption, reduction, subsequent efflux, or bioaccumulation. This review focuses on microbial responses to chromium toxicity and the potential for their use in environmental remediation. Moreover, the research problem and prospects for the future are discussed in order to fill these gaps and overcome the problem associated with bacterial bioremediation's real-time applicability.

摘要

工业废水/污水是环境中六价铬(Cr(VI))污染物的主要来源。由于 Cr(VI)在环境中具有很强的持久性和对生物体的高度致命性,因此已成为世界上最严重的环境问题之一。由于 Cr(VI)在工业中的广泛应用,它具有高度的毒性,是最常见的环境污染物之一。Cr(VI)在自然界中通常不易生物降解,这意味着它会在环境中停留很长时间,污染土壤和水,并对人类和野生动物构成重大健康风险。在生物体内,六价铬具有致癌性、遗传毒性和致突变性。目前用于去除 Cr(VI)的物理化学技术对环境不友好,并且使用大量化学品。微生物具有许多天然或获得的机制来对抗铬毒性,例如生物吸附、还原、随后的外排或生物积累。本综述重点介绍了微生物对铬毒性的反应及其在环境修复中的潜在应用。此外,还讨论了研究问题和未来展望,以填补这些空白并克服与细菌生物修复实时适用性相关的问题。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/07ab/8973695/38ead756381c/KBIE_A_2037273_UF0001_OC.jpg

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