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无为的益生元化学:作为洞察益生元合理性窗口的化学动力学

Do-Nothing Prebiotic Chemistry: Chemical Kinetics as a Window into Prebiotic Plausibility.

作者信息

White Skyla B, Rimmer Paul B

机构信息

Astrophysics Group, Cavendish Laboratory, University of Cambridge, JJ Thomson Avenue, Cambridge CB3 0HE, United Kingdom.

出版信息

Acc Chem Res. 2025 Jan 7;58(1):1-10. doi: 10.1021/acs.accounts.4c00247. Epub 2024 Dec 19.

Abstract

ConspectusOrigin of Life research is a fast growing field of study with each year bringing new breakthroughs. Recent discoveries include novel syntheses of life's building blocks, mechanisms of activation and interaction between molecules, and newly identified environments that provide promising conditions for these syntheses and mechanisms. Even with these new findings, firmly grounded in rigorous laboratory experiments, researchers often find themselves uncertain about how to apply them. How can a bridge be built between the laboratory and the geochemical environment? A critical question to ask when seeking to apply new results in origins is: how can this chemistry occur without direct intervention from a chemist? We believe the first step toward answering this question lies in the determination of rate constants and the construction of chemical networks to describe prebiotic chemistry in geochemical environments.So far, our group has measured several rate constants relevant to different prebiotic reaction networks, starting with the synthetic pathways of the cyanosulfidic network. The reactions we explore often involve ultraviolet light-driven photochemistry, facilitated by our StarLab setup that accurately simulates the spectrum of the young Sun and other stars. Our latest work investigates environments with active photochemistry in the absence of cyanide. In this study, we measure the effective rate constant for the production of formate from the reduction of carbon species using sulfite within the context of early Martian waters. The underlying goal of the work done in our group is to predict the likelihood that certain geological conditions will result in a specific set of chemical products. These predictions can be combined with those we have made for the necessary astrophysical conditions in certain origins of life scenarios on extrasolar planets.In the near future we expect that a sufficient number of rate constants will be measured, by our group and others, to allow for aspects of prebiotic chemistry to be predicted using chemical kinetics models. Once these models have been benchmarked against experimental data, our next step will be applying them to natural environments that better mimic the conditions thought to have been present at the onset of life. Following this, we can test these models by comparing their predictions to additional experiments. After refinement, these models will be able to provide guidance on the optimal conditions for conducting laboratory experiments, while helping to minimize and characterize any interference from a chemist.This approach can provide valuable insights into what is possible within geochemical environments, where all chemistry is by necessity do-nothing chemistry.

摘要

综述

生命起源研究是一个快速发展的研究领域,每年都有新的突破。最近的发现包括生命基本构成要素的新合成方法、分子之间的活化和相互作用机制,以及新发现的为这些合成方法和机制提供有利条件的环境。即使有了这些基于严格实验室实验的新发现,研究人员往往仍不确定如何应用它们。如何在实验室和地球化学环境之间架起一座桥梁?在寻求将新结果应用于生命起源研究时要问的一个关键问题是:这种化学反应如何在没有化学家直接干预的情况下发生?我们认为,回答这个问题的第一步在于确定速率常数,并构建化学网络来描述地球化学环境中的前生物化学。

到目前为止,我们小组已经测量了与不同前生物反应网络相关的几个速率常数,从氰硫化物网络的合成途径开始。我们探索的反应通常涉及紫外线驱动的光化学,这得益于我们的StarLab装置,它能精确模拟年轻太阳和其他恒星的光谱。我们的最新工作研究了在没有氰化物的情况下具有活跃光化学的环境。在这项研究中,我们在早期火星水域的背景下测量了使用亚硫酸盐还原碳物种生成甲酸盐的有效速率常数。我们小组所做工作的根本目标是预测某些地质条件产生特定化学产物集的可能性。这些预测可以与我们对系外行星某些生命起源场景中必要天体物理条件所做的预测相结合。

在不久的将来,我们预计我们小组和其他小组将测量足够数量的速率常数,以便能够使用化学动力学模型预测前生物化学的各个方面。一旦这些模型根据实验数据进行了基准测试,我们的下一步将是将它们应用于能更好模拟生命起源时所认为存在条件的自然环境。在此之后,我们可以通过将模型预测与其他实验进行比较来测试这些模型。经过完善后,这些模型将能够为进行实验室实验的最佳条件提供指导,同时有助于最小化并表征来自化学家的任何干扰。

这种方法可以为地球化学环境中可能发生的事情提供有价值的见解,在地球化学环境中,所有化学反应必然是自发进行的化学反应。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/523c/11713876/310ec2042f76/ar4c00247_0001.jpg

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