基于协因子的遗传密码起源机制。

IF 1.9 4区 物理与天体物理 Q2 BIOLOGY
Juan A Martínez Giménez, Rafael Tabares Seisdedos
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引用次数: 1

摘要

遗传密码的起源可能是生命起源研究的中心问题。要回答的关键问题是允许氨基酸与其三重密码子结合的分子机制。我们提出,密码子-反密码子双链位于原始trna的受体茎中,将促进与3'受体端连接的简单氨基酸(甘氨酸、缬氨酸和天冬氨酸)合成同源氨基酸所需的化学反应。在我们看来,各种核苷酸a衍生的辅助因子(具有活性化学基团)可以附着在密码子-反密码子双工上,这允许从辅助因子到简单氨基酸的基团转移反应,从而产生最终的氨基酸。核苷酸- a衍生的辅助因子可以通过与腺苷(辅因子)对接到小凹槽中,通过类似于a -小基序的相互作用将其结合到RNA双链(螺旋)中,在腺苷和双链的一个互补碱基对之间形成碱基三联体。此外,我们提出这种密码子-反密码子双工可以最初催化与简单氨基酸的自氨基酰化反应。因此,密码子-反密码子双链中的碱基序列将决定新氨基酸形成过程中发生的反应,以选择性结合核苷酸a衍生的辅助因子。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

A Cofactor-Based Mechanism for the Origin of the Genetic Code.

A Cofactor-Based Mechanism for the Origin of the Genetic Code.

The origin of the genetic code is probably the central problem of the studies on the origin of life. The key question to answer is the molecular mechanism that allows the association of the amino acids with their triplet codons. We proposed that the codon-anticodon duplex located in the acceptor stem of primitive tRNAs would facilitate the chemical reactions required to synthesize cognate amino acids from simple amino acids (glycine, valine, and aspartic acid) linked to the 3' acceptor end. In our view, various nucleotide-A-derived cofactors (with reactive chemical groups) may be attached to the codon-anticodon duplex, which allows group-transferring reactions from cofactors to simple amino acids, thereby producing the final amino acid. The nucleotide-A-derived cofactors could be incorporated into the RNA duplex (helix) by docking Adenosine (cofactor) into the minor groove via an interaction similar to the A-minor motif, forming a base triple between Adenosine and one complementary base pair of the duplex. Furthermore, we propose that this codon-anticodon duplex could initially catalyze a self-aminoacylation reaction with a simple amino acid. Therefore, the sequence of bases in the codon-anticodon duplex would determine the reactions that occurred during the formation of new amino acids for selective binding of nucleotide-A-derived cofactors.

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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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