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地球生命的极限与火星生命探索。

The limits of life on Earth and searching for life on Mars.

作者信息

Nealson K H

机构信息

Center for Great Lakes Studies, University of Wisconsin, Milwaukee, USA.

出版信息

J Geophys Res. 1997 Oct 25;102(E10):23,675-86.

Abstract

Considerations of basic properties of bacteria such as size, structure, and metabolic versatility allow one to understand how these remarkable life-forms are so adaptable to environments previously thought to be uninhabitable. It is now appreciated that bacteria on Earth can utilize almost any redox couple that yields energy, taking advantage of this energy, while transforming the elements during metabolism. The ability to grow at the expense of inorganic redox couples allows the microbes to occupy niches not available to the more metabolically constrained eukaryotes. Furthermore, the simplicity of the bacterial structure allows them considerably more resistance to environmental variables (pH, salinity, temperature) that are toxic or lethal to more complex organisms. This information can be used to explain the predominance of prokaryotes in extreme environments on Earth, and to speculate as to simple types of metabolism and biogeochemical cycles that may exist on this planet, Mars, and perhaps other non-Earth environments.

摘要

对细菌基本特性(如大小、结构和代谢多样性)的考量,有助于人们理解这些非凡的生命形式是如何如此适应先前被认为不适宜居住的环境的。现在人们认识到,地球上的细菌几乎可以利用任何能产生能量的氧化还原对,在代谢过程中利用这种能量,同时转化元素。以无机氧化还原对为代价进行生长的能力,使这些微生物能够占据代谢更受限制的真核生物无法利用的生态位。此外,细菌结构的简单性使它们对那些对更复杂生物体有毒或致命的环境变量(pH值、盐度、温度)具有更强的抵抗力。这些信息可用于解释地球上极端环境中 prokaryotes 的优势,并推测在这个星球、火星以及其他可能的非地球环境中可能存在的简单代谢类型和生物地球化学循环。

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