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Hydrothermal Microflow Technology as a Research Tool for Origin-of-Life Studies in Extreme Earth Environments

机译:热液微流技术作为极端地球环境中生命起源研究的研究工具

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摘要

Although studies about the origin of life are a frontier in science and a number of effective approaches have been developed, drawbacks still exist. Examples include: (1) simulation of chemical evolution experiments (which were demonstrated for the first time by Stanley Miller); (2) approaches tracing back the most primitive life-like systems (on the basis of investigations of present organisms); and (3) constructive approaches for making life-like systems (on the basis of molecular biology), such as in vitro construction of the RNA world. Naturally, simulation experiments of chemical evolution under plausible ancient Earth environments have been recognized as a potentially fruitful approach. Nevertheless, simulation experiments seem not to be sufficient for identifying the scenario from molecules to life. This is because primitive Earth environments are still not clearly defined and a number of possibilities should be taken into account. In addition, such environments frequently comprise extreme conditions when compared to the environments of present organisms. Therefore, we need to realize the importance of accurate and convenient experimental approaches that use practical research tools, which are resistant to high temperature and pressure, to facilitate chemical evolution studies. This review summarizes improvements made in such experimental approaches over the last two decades, focusing primarily on our hydrothermal microflow reactor technology. Microflow reactor systems are a powerful tool for performing simulation experiments in diverse simulated hydrothermal Earth conditions in order to measure the kinetics of formation and degradation and the interactions of biopolymers.
机译:尽管关于生命起源的研究是科学的前沿领域,并且已经开发出许多有效的方法,但是仍然存在弊端。实例包括:(1)模拟化学演化实验(斯坦利·米勒首次证明); (2)追溯最原始的栩栩如生的系统的方法(在对现有生物的调查基础上); (3)用于构建栩栩如生的系统的建设性方法(基于分子生物学),例如RNA世界的体外构建。自然地,在合理的古代地球环境下进行化学演化的模拟实验已被认为是一种可能富有成果的方法。然而,模拟实验似乎不足以识别从分子到生命的场景。这是因为原始地球环境仍未明确定义,应考虑多种可能性。另外,当与当前生物的环境相比时,这样的环境经常包括极端条件。因此,我们需要认识到使用实用的抗高温高压工具进行实验的准确,便捷实验方法的重要性,以促进化学演化研究。这篇综述总结了过去二十年来在此类实验方法中取得的进步,主要侧重于我们的水热微流反应器技术。微流反应器系统是一种功能强大的工具,可用于在多种模拟的热液地球条件下进行模拟实验,以测量形成和降解的动力学以及生物聚合物的相互作用。

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