Different Scenarios for the Origin and the Subsequent Succession of a Hypothetical Microbial Community in the Cloud Layer of Venus.

IF 3.5 3区 物理与天体物理 Q2 ASTRONOMY & ASTROPHYSICS Astrobiology Pub Date : 2024-04-01 Epub Date: 2024-04-02 DOI:10.1089/ast.2022.0117
Oleg R Kotsyurbenko, Vladimir N Kompanichenko, Anatoli V Brouchkov, Yuliya Y Khrunyk, Sergey P Karlov, Vladimir V Sorokin, Dmitry A Skladnev
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Abstract

The possible existence of a microbial community in the venusian clouds is one of the most intriguing hypotheses in modern astrobiology. Such a community must be characterized by a high survivability potential under severe environmental conditions, the most extreme of which are very low pH levels and water activity. Considering different scenarios for the origin of life and geological history of our planet, a few of these scenarios are discussed in the context of the origin of hypothetical microbial life within the venusian cloud layer. The existence of liquid water on the surface of ancient Venus is one of the key outstanding questions influencing this possibility. We link the inherent attributes of microbial life as we know it that favor the persistence of life in such an environment and review the possible scenarios of life's origin and its evolution under a strong greenhouse effect and loss of water on Venus. We also propose a roadmap and describe a novel methodological approach for astrobiological research in the framework of future missions to Venus with the intent to reveal whether life exists today on the planet.

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金星云层中假想微生物群落的起源和后续演化的不同情景。
金星云层中可能存在微生物群落,这是现代天体生物学中最引人入胜的假说之一。这种群落的特点必须是在恶劣的环境条件下具有很高的生存潜力,其中最极端的环境条件是极低的 pH 值和水活性。考虑到生命起源和地球地质历史的不同情况,我们将结合金星云层中假定微生物生命的起源来讨论其中的几种情况。古金星表面是否存在液态水是影响这种可能性的关键问题之一。我们将我们所知的有利于生命在这种环境中持续存在的微生物生命的固有属性联系起来,并回顾了生命起源及其在强烈温室效应和金星失水情况下进化的可能情景。我们还提出了一个路线图,并描述了在未来金星任务框架内进行天体生物学研究的新方法,目的是揭示金星上是否存在生命。
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来源期刊
Astrobiology
Astrobiology 生物-地球科学综合
CiteScore
7.70
自引率
11.90%
发文量
100
审稿时长
3 months
期刊介绍: Astrobiology is the most-cited peer-reviewed journal dedicated to the understanding of life''s origin, evolution, and distribution in the universe, with a focus on new findings and discoveries from interplanetary exploration and laboratory research. Astrobiology coverage includes: Astrophysics; Astropaleontology; Astroplanets; Bioastronomy; Cosmochemistry; Ecogenomics; Exobiology; Extremophiles; Geomicrobiology; Gravitational biology; Life detection technology; Meteoritics; Planetary geoscience; Planetary protection; Prebiotic chemistry; Space exploration technology; Terraforming
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