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Novel modern terrestrial analogues for potential life-favouring environments on ancient Mars

Novel modern terrestrial analogues for potential life-favouring environments on ancient Mars
古代火星上潜在的有利于生命的环境的新型现代陆地类似物
批准号:
2739605
负责人:
金额:
$0.0万
依托单位:
依托单位国家:
英国
项目类别:
Studentship
财政年份:
2022
资助国家:
英国
项目状态:
未结题
起止时间:
2022 至 --

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中文摘要
翻译
随着Mars2020火星车毅力号的着陆,新一代火星研究成为可能。这次任务将返回来自杰零陨石坑的样品,包括那些来自可能是潮湿的环境(例如,蒙皂石粘土和碳酸盐序列证明)的样品,因此可能适合火星过去的居住。在替代品开发方面的巨大进步为重建地球上过去的微生物生态、pH和碱度打开了窗口。我们建议将这些进展扩展到火星样本,但这样的努力将需要新一代地球类比的古替代验证和校准。这些模拟地点包括著名的碱性环境,这些环境仍然没有使用计划的方法进行勘探:冰岛的Myvatn湖,澳大利亚的Coorong沿海泻湖,以及土耳其的Salda湖。学生将使用i)有机生物标记物来揭示与高碱性环境相关的生态环境,以及ii)硼和氮同位素分析,以提供pH和碱度条件的透视。额外的生物标记物(如甘油醚脂)将进一步限制pH值。这些参数将有助于确定火星上潜在的过去生命的条件,以及扩大生物签名的可能性,特别是在未来几年我们的实验室返回并分析火星样本之后。总体目标是开发一种跨学科的战略,探索古代火星上可能的微生物生态,强调根据火星潮湿的过去假设的碱性环境,并在地球上显示出拥有大量和多样化的微生物群落。这项研究还广泛地谈到了在高pH值天体上的宜居性,如土卫二和行星外水世界,作为寻找外星生命的目标。
英文摘要
With the landing of the Mars2020 rover Perseverance, a new generation of Martian research is possible. This mission will return samples from Jezero crater, including those from settings that were likely wet (e.g., as evidenced by smectite clays and carbonate sequences) and therefore possibly habitable in the Martian past. Tremendous strides in proxy development have opened up windows to reconstructing past microbial ecology, pH and alkalinity on Earth. We propose to extend these advances to Martian samples, but such efforts will require a new generation of paleo-proxy validation and calibration in terrestrial analogues. These analogue locations include famous alkaline settings that remain unexplored using the planned methods: Lake Myvatn in Iceland, the Coorong coastal lagoon in Australia, and Lake Salda in Turkey. The student will use i) organic biomarkers to reveal ecologies associated with highly alkaline setting and ii) boron and nitrogen isotope analysis to provide perspectives of pH and alkalinity conditions. Additional biomarkers (e.g. glycerol ether lipids) will provide further constraints on pH. These parameters will help define the conditions of potential past life on Mars and expanded possibilities for biosignatures, particularly once Martian samples are returned and analysed in our labs in the coming years. The overarching goal is to develop an interdisciplinary strategy for exploring possible microbial ecology on ancient Mars, emphasizing alkaline settings that are hypothesised from Mars' wet past and shown on Earth are known to harbour large and diverse microbial communities. This study also speaks broadly to habitability on high-pH bodies such as Enceladus and exoplanetary water worlds as targets in the search for extraterrestrial life.
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