为火星注入生命:地球化和藻类在大气生成中的关键作用

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Applied Bio Materials Pub Date : 2024-03-13 DOI:10.1016/j.lssr.2024.03.001
Abuzer Çelekli , Özgür Eren Zariç
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引用次数: 0

摘要

火星环境的特点是极端干旱、低温和大气缺氧,这对潜在的地球化努力提出了严峻的挑战。这篇综述文章综述了在拟议的火星地球化过程中利用藻类作为生物催化剂的当前研究,评估了藻类通过光合生物工程促进火星大气条件的能力。我们分析了嗜极藻类的生理和遗传特征,这些特征使它们能够在地球上的极端栖息地生存,而地球上的极端栖息地可与火星表面条件进行类比。我们评估了这些生物介导火星大气变化的潜力,特别是它们在生物氧气生产和二氧化碳封存中的作用。我们讨论了提高藻类菌株的恢复能力和代谢效率的策略,包括基因改造和开发生物反应器,以便在地外环境中控制生长。此外,还探讨了将藻类系统与现有的机械和化学地球化建议相结合的问题,提出了一种建立新生火星生物圈的协同方法。对将地球生命引入行星外天体的伦理和生态考虑因素进行了批判性评估。这种评估包括对潜在的生态反馈回路和与生物地球化相关的固有风险的研究。生物地球化是故意改变行星的大气、温度和生态系统,使其适合类地生命生存的理论过程。从微生物类群开始到多细胞生物,分阶段引入生命的可行性为火星营造了有利的氛围。通过将生物技术创新的前沿扩展到太空,这项研究为人类最大胆的目标之一--另一个星球的地球化--提供了必要的基础认识。
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Breathing life into Mars: Terraforming and the pivotal role of algae in atmospheric genesis

The Martian environment, characterized by extreme aridity, frigid temperatures, and a lack of atmospheric oxygen, presents a formidable challenge for potential terraforming endeavors. This review article synthesizes current research on utilizing algae as biocatalysts in the proposed terraforming of Mars, assessing their capacity to facilitate Martian atmospheric conditions through photosynthetic bioengineering. We analyze the physiological and genetic traits of extremophile algae that equip them for survival in extreme habitats on Earth, which serve as analogs for Martian surface conditions. The potential for these organisms to mediate atmospheric change on Mars is evaluated, specifically their role in biogenic oxygen production and carbon dioxide sequestration. We discuss strategies for enhancing algal strains' resilience and metabolic efficiency, including genetic modification and the development of bioreactors for controlled growth in extraterrestrial environments. The integration of algal systems with existing mechanical and chemical terraforming proposals is also examined, proposing a synergistic approach for establishing a nascent Martian biosphere. Ethical and ecological considerations concerning introducing terrestrial life to extra-planetary bodies are critically appraised. This appraisal includes an examination of potential ecological feedback loops and inherent risks associated with biological terraforming. Biological terraforming is the theoretical process of deliberately altering a planet's atmosphere, temperature, and ecosystem to render it suitable for Earth-like life. The feasibility of a phased introduction of life, starting with microbial taxa and progressing to multicellular organisms, fosters a supportive atmosphere on Mars. By extending the frontier of biotechnological innovation into space, this work contributes to the foundational understanding necessary for one of humanity's most audacious goals—the terraforming of another planet.

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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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