The non-canonical nucleotides and prebiotic evolution

IF 2 4区 生物学 Q2 BIOLOGY
Alexey S. Ruzov , Alexander S. Ermakov
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引用次数: 0

Abstract

The mystery of the origin of life has been puzzling mankind for several millenia. Starting from the second half of the 20th century, when the crucial role of nucleic acids in biological heredity became apparent, the emphasis in the field has shifted to the explanation of the origin of nucleic acids and the mechanisms of copying of macromolecules. In the 1960s, the hypothesis of the RNA World was proposed, according to which the first stages of the origin of life on Earth were associated with the appearance of self-replicating complexes based on RNA, that were akin to RNA-enzymes that catalyze critical for life chemical reactions. Currently, it has been shown that different forms of RNA include not only canonical (adenine, uracil, guanine, cytosine), but also about 170 non-canonical nucleotides. In this review, we discuss potential roles of these non-canonical nucleotides in the processes of molecular prebiotic evolution, such as the emergence of canonical RNA nucleotides and catalytic RNAs, as well as the origin of template synthesis of RNA and proteins.
非标准核苷酸与益生元进化。
几千年来,生命的起源之谜一直困扰着人类。从20世纪下半叶开始,当核酸在生物遗传中的关键作用变得明显时,该领域的重点已经转移到解释核酸的起源和大分子复制的机制。20世纪60年代,“RNA世界”假说被提出,根据该假说,地球上生命起源的第一阶段与基于RNA的自我复制复合物的出现有关,这种复合物类似于催化生命化学反应的RNA酶。目前,已经证明不同形式的RNA不仅包括典型(腺嘌呤、尿嘧啶、鸟嘌呤、胞嘧啶),还包括大约170个非典型核苷酸。在这篇综述中,我们讨论了这些非规范核苷酸在分子益生元进化过程中的潜在作用,如规范RNA核苷酸和催化RNA的出现,以及RNA和蛋白质模板合成的起源。
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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来源期刊
Biosystems
Biosystems 生物-生物学
CiteScore
3.70
自引率
18.80%
发文量
129
审稿时长
34 days
期刊介绍: BioSystems encourages experimental, computational, and theoretical articles that link biology, evolutionary thinking, and the information processing sciences. The link areas form a circle that encompasses the fundamental nature of biological information processing, computational modeling of complex biological systems, evolutionary models of computation, the application of biological principles to the design of novel computing systems, and the use of biomolecular materials to synthesize artificial systems that capture essential principles of natural biological information processing.
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