Department of Chemistry & Chemical Biology, Cornell University, Ithaca, New York 14853, USA.
Department of Chemistry, Princeton University, Princeton, New Jersey 08544, USA.
Annu Rev Biophys. 2021 May 6;50:343-372. doi: 10.1146/annurev-biophys-100120-072804. Epub 2021 Feb 26.
Sampling and genomic efforts over the past decade have revealed an enormous quantity and diversity of life in Earth's extreme environments. This new knowledge of life on Earth poses the challenge of understandingits molecular basis in such inhospitable conditions, given that such conditions lead to loss of structure and of function in biomolecules from mesophiles. In this review, we discuss the physicochemical properties of extreme environments. We present the state of recent progress in extreme environmental genomics. We then present an overview of our current understanding of the biomolecular adaptation to extreme conditions. As our current and future understanding of biomolecular structure-function relationships in extremophiles requires methodologies adapted to extremes of pressure, temperature, and chemical composition, advances in instrumentation for probing biophysical properties under extreme conditions are presented. Finally, we briefly discuss possible future directions in extreme biophysics.
在过去的十年中,采样和基因组研究揭示了地球极端环境中大量多样的生命。这些有关地球生命的新知识提出了一个挑战,即在如此恶劣的条件下,要理解其分子基础,因为这些条件会导致嗜中生物的生物分子结构和功能丧失。在这篇综述中,我们讨论了极端环境的物理化学性质。我们介绍了极端环境基因组学的最新进展。然后,我们概述了我们目前对生物分子适应极端条件的理解。由于我们目前和未来对极端微生物中生物分子结构-功能关系的理解需要适应压力、温度和化学成分极端的方法,因此介绍了在极端条件下探测生物物理特性的仪器的进展。最后,我们简要讨论了极端生物物理学未来可能的发展方向。