论文标题

一种基于材料的潘佩米亚假设:聚合物凝胶和无膜液滴的潜力

A Material-based Panspermia Hypothesis: The Potential of Polymer Gels and Membraneless Droplets

论文作者

Sithamparam, Mahendran, Satthiyasilan, Nirmell, Chen, Chen, Jia, Tony Z, Chandru, Kuhan

论文摘要

Panspermia假设认为,生命的基础(分子panspermia)或生命本身(基于生物体的panspermia)可能已被转移到给定行星上的生命起源(OOL),以补充几个当前的OOL框架。尽管过去进行了许多太空飞行实验,以测试潜在的陆地生物作为粉刷种子,但尚不确定即使这些生物能够在太空飞行中生存,这种生物也可能会“种子”一个新的星球。因此,已提出将非生物化学物作为种子作为分子摇胶假说的一部分,而不是使用生物体。在这里,作为该假设的扩展,我们介绍和审查了基于聚合物材料的Panspermia种子(M-BPS)理论概念的合理性,其中可以用作M-BP的聚合物材料的类型必须能够:1)能够生存在太空中,而2)“功能”,即朝着某种形式的Abiogen of Abiogoention逐渐驱动Abiogen的形式。 我们使用聚合凝胶作为潜在M-BP的模型示例。可以在一个行星上(例如聚酯凝胶)在一个行星上合成的聚合物凝胶可以通过陨石转移转移到另一个行星上,而在降落在液体轴承行星上时,可以将含有细胞状特征和功能性的结构组装成。这种特征是这些凝胶可以通过相分离组装成隔室,以完成相关功能,例如封装原始代谢,遗传和催化材料,交换这些材料,运动,结合和进化。所有这些功能都可能导致凝胶改变其他行星上局部地球化学壁ni的能力,从而使化学演化导致OOL事件。

The Panspermia hypothesis posits that either life's building blocks (molecular Panspermia) or life itself (organism-based Panspermia) may have been interplanetary transferred to facilitate the Origins of Life (OoL) on a given planet, complementing several current OoL frameworks. Although many spaceflight experiments were performed in the past to test for potential terrestrial organisms as Panspermia seeds, it is uncertain whether such organisms will likely "seed" a new planet even if they are able to survive spaceflight. Therefore, rather than using organisms, using abiotic chemicals as seeds has been proposed as part of the molecular Panspermia hypothesis. Here, as an extension of this hypothesis, we introduce and review the plausibility of a polymeric material-based Panspermia seed (M-BPS) theoretical concept, where the type of polymeric material that can function as a M-BPS must be able to: 1) survive spaceflight, and 2) "function", i.e., contingently drive chemical evolution towards some form of abiogenesis once arriving on a foreign planet. We use polymeric gels as a model example of a potential M-BPS. Polymeric gels that can be prebiotically synthesized on one planet (such as polyester gels) could be transferred to another planet via meteoritic transfer, where upon landing on a liquid bearing planet, can assemble into structures containing cellular-like characteristics and functionalities. Such features presupposed that these gels can assemble into compartments through phase separation to accomplish relevant functions such as encapsulation of primitive metabolic, genetic and catalytic materials, exchange of these materials, motion, coalescence, and evolution. All of these functions can result in the gels' capability to alter local geochemical niches on other planets, thereby allowing chemical evolution to lead to OoL events.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源