Department of Chemistry, The Scripps Research Institute, 10550 North Torrey Pines Road, La Jolla, California 92037, United States.
NSF-NASA Center for Chemical Evolution, Atlanta, Georgia 30332, United States.
Chem Rev. 2020 Jun 10;120(11):4766-4805. doi: 10.1021/acs.chemrev.9b00546. Epub 2020 Jan 9.
The chemistry of abiotic nucleotide synthesis of RNA and DNA in the context of their prebiotic origins on early earth is a continuing challenge. How did (or how can) the nucleotides form and assemble from the small molecule inventories and under conditions that prevailed on early earth 3.5-4 billion years ago? This review provides a background and up-to-date progress that will allow the reader to judge where the field stands currently and what remains to be achieved. We start with a brief primer on the biological synthesis of nucleotides, followed by an extensive focus on the prebiotic formation of the components of nucleotides-either via the synthesis of ribose and the canonical nucleobases and then joining them together or by building both the conjoined sugar and nucleobase, part-by-part-toward the ultimate goal of forming RNA and DNA by polymerization. The review will emphasize that there are-and will continue to be-many more questions than answers from the synthetic, mechanistic, and analytical perspectives. We wrap up the review with a cautionary note in this context about coming to conclusions as to whether the problem of chemistry of prebiotic nucleotide synthesis has been solved.
在地球早期的生命起源中,非生物核苷酸合成 RNA 和 DNA 的化学过程是一个持续的挑战。核苷酸是如何从早期地球上占主导地位的小分子库存中形成和组装的?本文提供了一个背景和最新的进展,读者可以据此判断该领域目前的地位以及还有哪些需要实现。我们首先简要介绍核苷酸的生物合成,然后重点介绍核苷酸成分的前生物形成——要么通过核糖和规范核碱基的合成,然后将它们连接在一起,要么通过部分构建连接的糖和核碱基,最终通过聚合形成 RNA 和 DNA。这篇综述将强调,从合成、机制和分析的角度来看,问题比答案多得多。最后,我们在这方面提出了一个警示,即在确定前生物核苷酸合成的化学问题是否已经解决时要谨慎。