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The research progress in mechanism and influence of biosorption between lactic acid bacteria and Pb(II): A review

机译:乳酸菌和PB(II)生物吸附机制的研究进展及影响:综述

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Currently, due to high surface to volume ratio; large availability, rapid kinetics of adsorption and desorption and low cost, the exploitation of microbial biosorption of heavy metals is regarded as a reliable alternative compared to the conventional bioremediation approaches. In parallel with the increasing attractiveness of biosorption research, its pace of advance is also boosted. The barrier that prevent biosorption as an effective method from being applied into wastewater purification is listed, (1) There is not enough data on multi-component biosorption, (2) It remains to be seen that physical-chemical characteristics of different biomasses. (3) Studies on surface modification of strains for enhancement of heavy metals removal efficiency is lack. And extensive literatures involving the mechanism and model of biosorption for particular metal and microbial strains are not available. The present literatures lack systematization, the theory on interaction between lactic acid bacteria and Pb is far from complete. Therefore, the review tries to give a comprehensive explanation about the mechanism of Pb removal from Lactic acid bacteria and provide a brief overview of distinction between biosorption and bioaccumulation, biosorption technology, highlight the underlying features of biosorption and the various affecting factors such as pH, dose required, initial concentration, temperature, and treatment performance as a reference. Biosorption mechanisms can be briefly generalized into several pathways, which are ion exchange, complexation, precipitation, reduction and chelation. Many views holds that complexation is the major absorption mechanisms of Pb. Biosorption mechanisms can be roughly classified as biosorption and bioaccumulation, which have great differences between each other. Biosorption is metabolism-independent but fast, while bioaccumulation is metabolism-dependent but slow. The slight advantages of the bioaccumulation are the metabolite (lactic acid), lactobacillus surface-layers, enzymes and so on. Many factors can greatly affect adsorption process, different factors have different influence and the effects of pretreatment, pH and temperature are relatively greater. Desorption is not a fully reversible process of biosorption, but could not only achieve the goal of the recycle of microorganism, but also contribute to release of trace metal elements. Also the technologies for observation of biosorbents characterics and effect on the metal binding process are reviewed.
机译:目前,由于高度高度比率;可用性,吸附和解吸的快速动力学和低成本,与常规生物化方法相比,重质金属的微生物生物吸附的剥削被认为是可靠的替代品。与生物吸附研究的吸引力越来越平行,其前进的步伐也在增强。预防生物吸附作为有效方法的屏障被列出,(1)在多组分生物吸附上没有足够的数据,(2)仍有待观察,不同生物量的物理化学特性。 (3)缺乏对增强重金属去除效率的菌株表面改性的研究是缺乏。涉及特定金属和微生物菌株的生物吸附机制和模型的大量文献。目前的文献缺乏系统化,乳酸菌与Pb之间的相互作用理论远非完整。因此,审查试图对来自乳酸菌的PB的机制进行全面的解释,并提供生物吸附和生物累积,生物吸附技术之间的区分的简要概述,突出生物吸附的潜在特征和诸如pH的各种影响因素,需要剂量,初始浓度,温度和治疗性能作为参考。可以将生物吸附机制简单地推广到几种途径中,这是离子交换,络合,沉淀,减少和螯合剂。许多观点认为综合化是PB的主要吸收机制。生物吸附机制可以大致被归类为生物吸附和生物累积,彼此之间存在很大差异。生物吸附是代谢 - 无关,但快速,而生物累计是代谢依赖性但缓慢。生物累积的轻微优点是代谢物(乳酸),乳杆菌表面层,酶等。许多因素可以大大影响吸附过程,不同的因素具有不同的影响和预处理的影响,pH和温度相对较大。解吸不是生物吸附的完全可逆过程,但不仅可以达到微生物回收的目标,而且还有助于释放痕量金属元素。综述了用于观察生物吸收性特征的技术及对金属结合过程的影响。

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