Manganese in Marine Microbiology.

2区 生物学 Q1 Biochemistry, Genetics and Molecular Biology
Advances in Microbial Physiology Pub Date : 2017-01-01 Epub Date: 2017-03-14 DOI:10.1016/bs.ampbs.2017.01.005
Colleen M Hansel
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引用次数: 44

Abstract

The importance of manganese in the physiology of marine microbes, the biogeochemistry of the ocean and the health of microbial communities of past and present is emerging. Manganese is distributed widely throughout the global ocean, taking the form of an essential antioxidant (Mn2+), a potent oxidant (Mn3+) and strong adsorbent (Mn oxides) sequestering disproportionately high levels of trace metals and nutrients in comparison to the surrounding seawater. Manganese is, in fact, linked to nearly all other elemental cycles and intricately involved in the health, metabolism and function of the ocean's microbiome. Here, we briefly review the diversity of microbes and pathways responsible for the transformation of Mn within the three Mn pools and their distribution within the marine environment. Despite decades of interrogation, we still have much to learn about the players, mechanisms and consequences of the Mn cycle, and new and exciting discoveries are being made at a rapid rate. What is clear is the dynamic and ever-inspiring complexity of reactions involving Mn, and the acknowledgement that microorganisms are the catalytic engine driving the Mn cycle.

海洋微生物学中的锰。
锰在海洋微生物生理学、海洋生物地球化学以及过去和现在微生物群落健康方面的重要性正在显现。锰广泛分布在全球海洋中,以必需的抗氧化剂(Mn2+)、强氧化剂(Mn3+)和强吸附剂(Mn氧化物)的形式存在,与周围海水相比,它们隔离了不成比例的高水平微量金属和营养物质。事实上,锰与几乎所有其他元素循环都有联系,并且与海洋微生物群的健康、新陈代谢和功能有着复杂的关系。在此,我们简要回顾了三个锰池中负责锰转化的微生物多样性和途径及其在海洋环境中的分布。尽管经过了几十年的探索,我们对锰循环的参与者、机制和后果仍有很多需要了解的地方,新的令人兴奋的发现正在迅速出现。清楚的是,涉及Mn的反应是动态的、令人鼓舞的复杂性,并且承认微生物是驱动Mn循环的催化引擎。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Advances in Microbial Physiology
Advances in Microbial Physiology 生物-生化与分子生物学
CiteScore
6.20
自引率
0.00%
发文量
16
期刊介绍: Advances in Microbial Physiology publishes topical and important reviews, interpreting physiology to include all material that contributes to our understanding of how microorganisms and their component parts work. First published in 1967, the editors have always striven to interpret microbial physiology in the broadest context and have never restricted the contents to traditional views of whole cell physiology.
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