原始聚酯合成及无膜微滴组装研究进展。

Tony Z Jia, Kuhan Chandru
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引用次数: 0

摘要

虽然人们通常认为生命的起源需要早期生物分子的参与,但最近有人提出,“非生物分子”也可能起了作用,它们在早期地球上即使不是更丰富,也会一样丰富。特别是,最近的研究强调了聚酯在生命起源过程中可能发挥重要作用的各种方式,聚酯不参与现代生物学。在早期的地球上,聚酯可以通过简单的脱水反应在温和的温度下合成,其中含有丰富的“非生物”α羟基酸(AHA)单体。这种脱水合成过程产生了聚酯凝胶,在进一步的再水合作用下,可以组装成无膜的液滴,被认为是原始细胞模型。这些被提出的原始细胞可以为原始化学系统提供功能,例如分析物的分离或保护,这可能进一步导致化学从益生元化学进化到新生生物化学。在这里,为了进一步阐明“非生物分子”聚酯在生命起源中的重要性,并强调未来的研究方向,我们回顾了最近的研究,这些研究主要集中在从aha合成聚酯的原始合成以及将这些聚酯组装成无膜滴。具体来说,在过去五年中,该领域的大多数最新进展都是由日本的实验室领导的,这些将特别突出。这篇文章是基于在2022年9月举行的第60届日本生物物理学会年会上作为第18届早期职业奖获得者的受邀演讲。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Recent progress in primitive polyester synthesis and membraneless microdroplet assembly.

Recent progress in primitive polyester synthesis and membraneless microdroplet assembly.

Recent progress in primitive polyester synthesis and membraneless microdroplet assembly.

Recent progress in primitive polyester synthesis and membraneless microdroplet assembly.

While it is often believed that the origins of life required participation of early biomolecules, it has been recently proposed that "non-biomolecules", which would have been just as, if not more, abundant on early Earth, could have played a part. In particular, recent research has highlighted the various ways by which polyesters, which do not participate in modern biology, could have played a major role during the origins of life. Polyesters could have been synthesized readily on early Earth through simple dehydration reactions at mild temperatures involving abundant "non-biological" alpha hydroxy acid (AHA) monomers. This dehydration synthesis process results in a polyester gel, which upon further rehydration, can assemble into membraneless droplets proposed to be protocell models. These proposed protocells can provide functions to a primitive chemical system, such as analyte segregation or protection, which could have further led to chemical evolution from prebiotic chemistry to nascent biochemistry. Here, to further shed light into the importance of "non-biomolecular" polyesters at the origins of life and to highlight future directions of study, we review recent studies which focus on primitive synthesis of polyesters from AHAs and assembly of these polyesters into membraneless droplets. Specifically, most of the recent progress in this field in the last five years has been led by laboratories in Japan, and these will be especially highlighted. This article is based on an invited presentation at the 60th Annual Meeting of the Biophysical Society of Japan held in September, 2022 as an 18th Early Career Awardee.

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