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首页> 外文期刊>Journal of Environmental Science and Health. A, Toxic/Hazardous Substances & Environmental Engineering >Effects of physicochemical properties of Au cyanidation tailings on cyanide microbial degradation
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Effects of physicochemical properties of Au cyanidation tailings on cyanide microbial degradation

机译:Au氰化尾矿对氰基微生物降解的物理化学性质的影响

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The initial cyanide (CN-) concentration and amount of co-contaminants in GCTs can inhibit bacterial growth and reduce the CN--degrading ability of bacteria. Several microorganisms can biotransform a wide range of organic and inorganic industrial contaminants into nontoxic compounds. However, active enzymatic CN- metabolism processes are mostly constrained by the physical and chemical characteristics of GCTs. High concentrations of toxic metal co-contaminants, such as, Pb, and Cr, and factors, such as pH, temperature, and oxygen concentration create oxidative stress and limit the CN--degrading potential of cyanotrophic strains. The effects of such external and internal factors on the CN--degrading ability of bacteria hinder the selection of suitable microorganisms for CN- biodegradation. Therefore, understanding the effects of the physicochemical properties of GCTs on cyanobacteria strains can help identify suitable microbes and favorable environmental conditions to promote microbial growth and can also help design efficient CN- biodegradation processes. In this review, we present a detailed analysis of the physicochemical properties of GCTs and their effects on microbial CN- degradation.
机译:GCT中的初始氰(CN-)浓度和共污染物的量可抑制细菌生长并降低细菌的CN降解能力。几种微生物可以将各种有机和无机工业污染物生物转化为无毒化合物。然而,活性酶CN-代谢过程主要受GCT的物理和化学特征的约束。高浓度的有毒金属共污染物,例如Pb和Cr,以及PH,温度和氧浓度等因素产生氧化应激并限制氰营养菌株的CN降解潜力。外部和内部因素对细菌CN降解能力的影响,妨碍CN-生物降解的合适微生物选择。因此,了解GCTS对蓝藻菌株的物理化学性质的影响可以有助于鉴定合适的微生物和有利的环境条件以促进微生物生长,也可以帮助设计有效的CN-生物降解过程。在本综述中,我们对GCTS的物理化学特性及其对微生物CN-降解的影响进行了详细分析。

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