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锤头自我切割基序作为复杂内切核酸酶核糖酶的前体。

The hammerhead self-cleaving motif as a precursor to complex endonucleolytic ribozymes.

机构信息

Department of Chemistry, The University of Chicago, Chicago, Illinois 60637, USA.

Department of Biochemistry and Molecular Biology, The University of Chicago, Chicago, Illinois 60637, USA.

出版信息

RNA. 2021 Sep;27(9):1017-1024. doi: 10.1261/rna.078813.121. Epub 2021 Jun 15.

Abstract

Connections between distinct catalytic RNA motifs through networks of mutations that retain catalytic function (neutral networks) were likely central to the evolution of biocatalysis. Despite suggestions that functional RNAs collectively form an interconnected web of neutral networks, little evidence has emerged to demonstrate the existence of such intersecting networks in naturally occurring RNAs. Here we show that neutral networks of two naturally occurring, seemingly unrelated endonucleolytic ribozymes, the hammerhead (HH) and hairpin (HP), intersect. Sequences at the intersection of these networks exhibit catalytic functions corresponding to both ribozymes by potentially populating both catalytic folds and enable a smooth crossover between the two. Small and structurally simple endonucleolytic motifs like the HH ribozyme could, through mutational walks along their neutral networks, encounter novel catalytic phenotypes, and structurally flexible, bifunctional sequences at the intersection of these networks could have acted as nodes for evolutionary diversification in an RNA world. Considering the simplicity and small size of the HH ribozyme, we propose that this self-cleaving motif could have been a precursor to other more complex endonucleolytic ribozymes. More generally, our results suggest that RNAs that possess distinct sequences, structures, and catalytic functions, can potentially share evolutionary history through mutational connections in sequence space.

摘要

通过保留催化功能的突变网络(中性网络)将不同催化 RNA 基序连接起来,这对于生物催化的进化可能至关重要。尽管有证据表明功能性 RNA 共同构成了相互连接的中性网络,但很少有证据表明在天然存在的 RNA 中存在这种相交的网络。在这里,我们表明两种天然存在的、看似无关的内切核酶 RNA(锤头(HH)和发夹(HP))的中性网络相交。这些网络的交点处的序列通过潜在地填充两种催化折叠并实现两种催化折叠之间的平稳转换,表现出对应于两种核酶的催化功能。像 HH 核酶这样的小而结构简单的内切核酶,可以通过沿着其中性网络的突变行走,遇到新的催化表型,而这些网络交点处结构灵活的双功能序列可以作为 RNA 世界中进化多样化的节点。考虑到 HH 核酶的简单性和小尺寸,我们提出这个自我切割的基序可能是其他更复杂的内切核酶的前身。更一般地,我们的结果表明,具有不同序列、结构和催化功能的 RNA 可以通过序列空间中的突变连接共享潜在的进化历史。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/eed9/8370743/0875157a992b/1017f01.jpg

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