模拟碳质软玉母体中的分子多样性和氨基酸演化

IF 2.9 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY ACS Earth and Space Chemistry Pub Date : 2024-03-12 DOI:10.1021/acsearthspacechem.3c00366
Adeline Garcia, Yingfei Yan, Cornelia Meinert, Philippe Schmitt-Kopplin, Vassilissa Vinogradoff, Jean-Christophe Viennet, Laurent Remusat, Sylvain Bernard, Michel Righezza, Louis Le Sergeant d’Hendecourt and Grégoire Danger*, 
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引用次数: 0

摘要

在行星际天体中发现的有机物来自不同的环境。我们在实验室中复制了固相条件,以阐明有机物的逐步演化过程,包括从致密分子云冰到陨石母体内发生的过程。我们的工作重点是氨基酸,它被认为是小行星二次蜕变的潜在化学示踪剂。利用气相色谱法和高分辨率质谱法,在由致密分子冰模拟物形成的前分泌有机模拟物中确定了痕量氨基酸。随后,这种类似物被暴露在水变化中。随着时间的推移,α- 和 β-氨基酸的生成量也随之增加。根据高分辨率质谱数据,这些反应涉及糖类和胺类化合物,随后是由于消耗糖类和氨基酸的马氏反应造成的氨基酸破坏。令人惊讶的是,我们还观察到了氨基酸形成的第二阶段,特别是 α-氨基酸,这表明可能发生了 Strecker 反应。我们展示了在分子多样性存在的情况下发生的错综复杂的化学网络,类似于母体改变过程中可能发生的情况。因此,对陨石母体内反应性的研究必须考虑到它们的分子多样性,认识到潜在的交叉反应,正如这项工作所展示的那样。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Molecular Diversity and Amino Acid Evolution in Simulated Carbonaceous Chondrite Parent Bodies

In interplanetary bodies, organics are found originating from various environments. We replicate the solid-phase conditions in a laboratory to elucidate the step-by-step evolution of organic matter, spanning from dense molecular cloud ices to processes occurring within meteorite parent bodies. The focus of our work is on amino acids, considered as potential chemical tracers of secondary alteration on asteroids. Using gas chromatography and high-resolution mass spectrometry, trace amounts of amino acids are identified in a preaccretional organic analogue formed from a dense molecular ice analogue. This analogue was subsequently exposed to aqueous alteration. This induced an increase in the formation of α- and β-amino acids over time. Supported by high-resolution mass spectrometry data, the reactions involved sugars and amine compounds, followed by amino acid destruction due to the Maillard reaction, which consumes both sugars and amino acids. Surprisingly, a second phase of amino acid formation, specifically α-amino acids, was observed, indicating the potential occurrence of the Strecker reaction. We demonstrate the intricate chemical network occurring within the presence of molecular diversity, similar to what might occur during parent body alteration. Therefore, investigations on reactivity within meteorite parent bodies have to take into account their molecular diversity, recognizing potential cross-reactions, as demonstrated in this work.

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来源期刊
ACS Earth and Space Chemistry
ACS Earth and Space Chemistry Earth and Planetary Sciences-Geochemistry and Petrology
CiteScore
5.30
自引率
11.80%
发文量
249
期刊介绍: The scope of ACS Earth and Space Chemistry includes the application of analytical, experimental and theoretical chemistry to investigate research questions relevant to the Earth and Space. The journal encompasses the highly interdisciplinary nature of research in this area, while emphasizing chemistry and chemical research tools as the unifying theme. The journal publishes broadly in the domains of high- and low-temperature geochemistry, atmospheric chemistry, marine chemistry, planetary chemistry, astrochemistry, and analytical geochemistry. ACS Earth and Space Chemistry publishes Articles, Letters, Reviews, and Features to provide flexible formats to readily communicate all aspects of research in these fields.
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