从分子水平了解微生物生物矿化:最新进展

Ankita Debnath, Sayak Mitra, Supratit Ghosh, Ramkrishna Sen
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引用次数: 0

摘要

微生物生物矿化是微生物细胞内部或周围沉积无机矿物质的现象,是生物地球化学循环的直接结果。微生物的新陈代谢过程往往为硅酸盐、碳酸盐或磷酸盐、铁酸盐等无处不在的无机离子的沉淀创造了有利的环境条件。迄今为止,人们对微生物控制矿化和微生物诱导矿化这两大类微生物生物矿化的基本机制仍然知之甚少。微生物控制矿化(MCM)完全取决于细胞的基因构成,而微生物诱导矿化(MIM)则取决于细胞形态、细胞表面结构和细胞外聚合物质(EPS)等因素。近年来,基于固态生物无机化学原理,有机模板介导的无机矿物成核被认为是一种潜在机制。因此,本综述试图全面而深入地综述对 MCM 和 MIM 的整体理解的最新进展,其中涉及导致模板形成、生物矿物成核和结晶的有机-无机生物分子相互作用。此外,还讨论了特定代谢途径和分子操作子在指导微生物生物矿化过程中的运作。揭示这些生物矿化的分子机制有助于矿物的生物仿生合成,从而为潜在的治疗应用提供帮助,并促进生物矿物商业化生产的微生物工程。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Understanding microbial biomineralization at the molecular level: recent advances

Understanding microbial biomineralization at the molecular level: recent advances

Microbial biomineralization is a phenomenon involving deposition of inorganic minerals inside or around microbial cells as a direct consequence of biogeochemical cycling. The microbial metabolic processes often create environmental conditions conducive for the precipitation of silicate, carbonate or phosphate, ferrate forms of ubiquitous inorganic ions. Till date the fundamental mechanisms underpinning two of the major types of microbial biomineralization such as, microbially controlled and microbially induced remains poorly understood. While microbially-controlled mineralization (MCM) depends entirely on the genetic makeup of the cell, microbially-induced mineralization (MIM) is dependent on factors such as cell morphology, cell surface structures and extracellular polymeric substances (EPS). In recent years, the organic template-mediated nucleation of inorganic minerals has been considered as an underlying mechanism based on the principles of solid-state bioinorganic chemistry. The present review thus attempts to provide a comprehensive and critical overview on the recent progress in holistic understanding of both MCM and MIM, which involves, organic–inorganic biomolecular interactions that lead to template formation, biomineral nucleation and crystallization. Also, the operation of specific metabolic pathways and molecular operons in directing microbial biomineralization have been discussed. Unravelling these molecular mechanisms of biomineralization can help in the biomimetic synthesis of minerals for potential therapeutic applications, and facilitating the engineering of microorganisms for commercial production of biominerals.

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