模型早期地球条件下代谢中间体的反应性和辅因子稳定性。

IF 1.9 4区 物理与天体物理 Q2 BIOLOGY
Thora R Maltais, David VanderVelde, Douglas E LaRowe, Aaron D Goldman, Laura M Barge
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引用次数: 7

摘要

理解代谢途径的出现是揭示促进生命起源的因素的关键。一种流行的观点是,蛋白质辅因子在蛋白质酶进化之前就起了催化剂的作用。我们研究了早期地球条件下乙酰辅酶A(乙酰辅酶A, TCA循环中柠檬酸合成中的基团转移辅助因子)的稳定性,以及乙酰辅酶A或其小分子类似物硫乙酸或乙酸是否可以在没有柠檬酸合酶的情况下催化乙酰基转移到草酰乙酸上。测试了几种不同的温度、pH值范围和水环境的组成,以模拟地球早期的海洋及其可能的成分;在环境和缺氧条件下评估了这些变量对草酰乙酸和辅助因子化学的影响。所测试的辅助因子在早期地球条件下是化学稳定的,但在所测试的条件下,三种化合物(乙酰辅酶a、硫乙酸酯或乙酸酯)都没有促进草酰乙酸合成柠檬酸。草酰乙酸在环境条件下与自身反应和/或分解形成一系列其他产物,在缺氧条件下更稳定;在环境条件下,观察到的特定化学途径取决于环境条件,如早期地球海洋模拟物的pH值和碳酸氢盐或盐离子的存在/缺失。这项工作证明了这些代谢中间体在缺氧条件下的稳定性。然而,即使游离辅助因子在地质环境中可能是稳定的,酶或其他促进反应特异性的机制可能至少是这个特定反应进行所必需的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Reactivity of Metabolic Intermediates and Cofactor Stability under Model Early Earth Conditions.

Understanding the emergence of metabolic pathways is key to unraveling the factors that promoted the origin of life. One popular view is that protein cofactors acted as catalysts prior to the evolution of the protein enzymes with which they are now associated. We investigated the stability of acetyl coenzyme A (Acetyl Co-A, the group transfer cofactor in citric acid synthesis in the TCA cycle) under early Earth conditions, as well as whether Acetyl Co-A or its small molecule analogs thioacetate or acetate can catalyze the transfer of an acetyl group onto oxaloacetate in the absence of the citrate synthase enzyme. Several different temperatures, pH ranges, and compositions of aqueous environments were tested to simulate the Earth's early ocean and its possible components; the effect of these variables on oxaloacetate and cofactor chemistry were assessed under ambient and anoxic conditions. The cofactors tested are chemically stable under early Earth conditions, but none of the three compounds (Acetyl Co-A, thioacetate, or acetate) promoted synthesis of citric acid from oxaloacetate under the conditions tested. Oxaloacetate reacted with itself and/or decomposed to form a sequence of other products under ambient conditions, and under anoxic conditions was more stable; under ambient conditions the specific chemical pathways observed depended on the environmental conditions such as pH and presence/absence of bicarbonate or salt ions in early Earth ocean simulants. This work demonstrates the stability of these metabolic intermediates under anoxic conditions. However, even though free cofactors may be stable in a geological environmental setting, an enzyme or other mechanism to promote reaction specificity would likely be necessary for at least this particular reaction to proceed.

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来源期刊
CiteScore
3.20
自引率
15.00%
发文量
12
审稿时长
>12 weeks
期刊介绍: The subject of the origin and early evolution of life is an inseparable part of the general discipline of Astrobiology. The journal Origins of Life and Evolution of Biospheres places special importance on the interconnection as well as the interdisciplinary nature of these fields, as is reflected in its subject coverage. While any scientific study which contributes to our understanding of the origins, evolution and distribution of life in the Universe is suitable for inclusion in the journal, some examples of important areas of interest are: prebiotic chemistry and the nature of Earth''s early environment, self-replicating and self-organizing systems, the theory of the RNA world and of other possible precursor systems, and the problem of the origin of the genetic code. Early evolution of life - as revealed by such techniques as the elucidation of biochemical pathways, molecular phylogeny, the study of Precambrian sediments and fossils and of major innovations in microbial evolution - forms a second focus. As a larger and more general context for these areas, Astrobiology refers to the origin and evolution of life in a cosmic setting, and includes interstellar chemistry, planetary atmospheres and habitable zones, the organic chemistry of comets, meteorites, asteroids and other small bodies, biological adaptation to extreme environments, life detection and related areas. Experimental papers, theoretical articles and authorative literature reviews are all appropriate forms for submission to the journal. In the coming years, Astrobiology will play an even greater role in defining the journal''s coverage and keeping Origins of Life and Evolution of Biospheres well-placed in this growing interdisciplinary field.
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