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Insights into the Survival Capabilities of Cryomyces antarcticus Hydrated Colonies after Exposure to Fe Particle Radiation

机译:暴露于Fe粒子辐射后在Fe粒子辐射后洞察Cryomyces抗arcticus水质菌落的存活能力

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摘要

The modern concept of the evolution of Mars assumes that life could potentially have originated on the planet Mars, possibly during the end of the late heavy bombardment, and could then be transferred to other planets. Since then, physical and chemical conditions on Mars changed and now strongly limit the presence of terrestrial-like life forms. These adverse conditions include scarcity of liquid water (although brine solutions may exist), low temperature and atmospheric pressure, and cosmic radiation. Ionizing radiation is very important among these life-constraining factors because it damages DNA and other cellular components, particularly in liquid conditions where radiation-induced reactive oxidants diffuse freely. Here, we investigated the impact of high doses (up to 2 kGy) of densely-ionizing (197.6 keV/µm), space-relevant iron ions (corresponding on the irradiation that reach the uppermost layer of the Mars subsurface) on the survival of an extremophilic terrestrial organism—Cryomyces antarcticus—in liquid medium and under atmospheric conditions, through different techniques. Results showed that it survived in a metabolically active state when subjected to high doses of Fe ions and was able to repair eventual DNA damages. It implies that some terrestrial life forms can withstand prolonged exposure to space-relevant ion radiation.
机译:MARS演变的现代概念假设生命可能是可能起源于地球火星,可能在沉重的轰炸结束时,然后可以转移到其他行星。从那时起,火星上的物理和化学条件发生了变化,现在强烈限制了陆地生活形式的存在。这些不利条件包括液态水的稀缺性(尽管可能存在盐水溶液),低温和大气压和宇宙辐射。在这些生命限制因素中,电离辐射非常重要,因为它损坏了DNA和其他细胞组分,特别是在辐射诱导的反应性氧化剂自由扩散的液体条件下。在这里,我们研究了高剂量(高达2kGY)密集电离(197.6keV /μm),空间相关的铁离子(对应于到达Mars地下最上层的辐射)的影响通过不同技术,通过不同技术进行极致陆生物体 - 在大气条件下进行抗野生菌液中液体培养基。结果表明,当经过高剂量的Fe离子时,它在代谢活性状态下存活,并且能够修复最终的DNA损伤。它意味着一些陆地寿命形式可以承受延长暴露于空间相关的离子辐射。

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