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地球化学的遗传学。

The genetics of geochemistry.

作者信息

Croal Laura R, Gralnick Jeffrey A, Malasarn Davin, Newman Dianne K

机构信息

Divisions of Biology, California Institute of Technology, Pasadena, California 91125, USA.

出版信息

Annu Rev Genet. 2004;38:175-202. doi: 10.1146/annurev.genet.38.072902.091138.

Abstract

Bacteria are remarkable in their metabolic diversity due to their ability to harvest energy from myriad oxidation and reduction reactions. In some cases, their metabolisms involve redox transformations of metal(loid)s, which lead to the precipitation, transformation, or dissolution of minerals. Microorganism/mineral interactions not only affect the geochemistry of modern environments, but may also have contributed to shaping the near-surface environment of the early Earth. For example, bacterial anaerobic respiration of ferric iron or the toxic metalloid arsenic is well known to affect water quality in many parts of the world today, whereas the utilization of ferrous iron as an electron donor in anoxygenic photosynthesis may help explain the origin of Banded Iron Formations, a class of ancient sedimentary deposits. Bacterial genetics holds the key to understanding how these metabolisms work. Once the genes and gene products that catalyze geochemically relevant reactions are understood, as well as the conditions that trigger their expression, we may begin to predict when and to what extent these metabolisms influence modern geochemical cycles, as well as develop a basis for deciphering their origins and how organisms that utilized them may have altered the chemical and physical features of our planet.

摘要

细菌因其能够从无数氧化和还原反应中获取能量而在代谢多样性方面表现出色。在某些情况下,它们的代谢涉及金属(类金属)的氧化还原转化,这会导致矿物质的沉淀、转化或溶解。微生物与矿物质的相互作用不仅影响现代环境的地球化学,还可能对早期地球近地表环境的形成起到了作用。例如,如今在世界许多地区,细菌对三价铁或有毒类金属砷的厌氧呼吸众所周知会影响水质,而在无氧光合作用中利用二价铁作为电子供体可能有助于解释条带状铁建造的起源,条带状铁建造是一类古老的沉积矿床。细菌遗传学是理解这些代谢如何运作的关键。一旦了解了催化与地球化学相关反应的基因和基因产物,以及触发它们表达的条件,我们或许就能开始预测这些代谢何时以及在何种程度上影响现代地球化学循环,还能为解读它们的起源以及利用这些代谢的生物如何改变我们星球的化学和物理特征奠定基础。

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