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氢主导大气中的光合作用。

Photosynthesis in hydrogen-dominated atmospheres.

作者信息

Bains William, Seager Sara, Zsom Andras

机构信息

Department of Earth, Atmospheric and Planetary Sciences, Massachusetts Institute of Technology, 77 Massachusetts Ave., Cambridge, MA 02139, USA.

出版信息

Life (Basel). 2014 Nov 18;4(4):716-44. doi: 10.3390/life4040716.

Abstract

The diversity of extrasolar planets discovered in the last decade shows that we should not be constrained to look for life in environments similar to early or present-day Earth. Super-Earth exoplanets are being discovered with increasing frequency, and some will be able to retain a stable, hydrogen-dominated atmosphere. We explore the possibilities for photosynthesis on a rocky planet with a thin H2-dominated atmosphere. If a rocky, H2-dominated planet harbors life, then that life is likely to convert atmospheric carbon into methane. Outgassing may also build an atmosphere in which methane is the principal carbon species. We describe the possible chemical routes for photosynthesis starting from methane and show that less energy and lower energy photons could drive CH4-based photosynthesis as compared with CO2-based photosynthesis. We find that a by-product biosignature gas is likely to be H2, which is not distinct from the hydrogen already present in the environment. Ammonia is a potential biosignature gas of hydrogenic photosynthesis that is unlikely to be generated abiologically. We suggest that the evolution of methane-based photosynthesis is at least as likely as the evolution of anoxygenic photosynthesis on Earth and may support the evolution of complex life.

摘要

过去十年间发现的系外行星的多样性表明,我们不应局限于在与早期或当今地球类似的环境中寻找生命。超级地球系外行星被发现的频率越来越高,其中一些能够保留稳定的、以氢为主的大气层。我们探索了在一个大气层稀薄且以氢气为主的岩石行星上进行光合作用的可能性。如果一个以氢气为主的岩石行星孕育着生命,那么那种生命很可能会将大气中的碳转化为甲烷。火山喷发也可能形成一种以甲烷为主要碳物种的大气层。我们描述了从甲烷开始进行光合作用的可能化学途径,并表明与基于二氧化碳的光合作用相比,基于甲烷的光合作用所需能量更少,所需光子能量更低。我们发现一种副产物生物特征气体可能是氢气,它与环境中已有的氢气并无区别。氨气是基于氢的光合作用的一种潜在生物特征气体,不太可能通过非生物方式产生。我们认为,基于甲烷的光合作用的演化至少与地球上无氧光合作用的演化可能性相当,并且可能支持复杂生命的演化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8207/4284464/c3338b1fcbe7/life-04-00716-g001.jpg

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