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从密码子表中学习:会聚重编码为 A-to-I RNA 编辑的进化提供了新的认识。

Learning from the Codon Table: Convergent Recoding Provides Novel Understanding on the Evolution of A-to-I RNA Editing.

机构信息

Department of Entomology and MOA Key Lab of Pest Monitoring and Green Management, College of Plant Protection, China Agricultural University, Beijing, 100193, China.

出版信息

J Mol Evol. 2024 Aug;92(4):488-504. doi: 10.1007/s00239-024-10190-z. Epub 2024 Jul 16.

DOI:10.1007/s00239-024-10190-z
PMID:39012510
Abstract

Adenosine-to-inosine (A-to-I) RNA editing recodes the genetic information. Apart from diversifying the proteome, another tempting advantage of RNA recoding is to correct deleterious DNA mutation and restore ancestral allele. Solid evidences for beneficial restorative editing are very rare in animals. By searching for "convergent recoding" under a phylogenetic context, we proposed this term for judging the potential restorative functions of particular editing site. For the well-known mammalian Gln>Arg (Q>R) recoding site, its ancestral state in vertebrate genomes was the pre-editing Gln, and all 470 available mammalian genomes strictly avoid other three equivalent ways to achieve Arg in protein. The absence of convergent recoding from His>Arg, or synonymous mutations on Gln codons, could be attributed to the strong maintenance on editing motif and structure, but the absence of direct A-to-G mutation is extremely unexpected. With similar ideas, we found cases of convergent recoding in Drosophila genus, reducing the possibility of their restorative function. In summary, we defined an interesting scenario of convergent recoding, the occurrence of which could be used as preliminary judgements for whether a recoding site has a sole restorative role. Our work provides novel insights to the natural selection and evolution of RNA editing.

摘要

腺苷到次黄嘌呤(A-to-I)RNA 编辑对遗传信息进行重编码。除了使蛋白质组多样化外,RNA 重编码的另一个诱人优势是纠正有害的 DNA 突变并恢复祖先等位基因。在动物中,有益的修复编辑的确凿证据非常罕见。通过在系统发育背景下搜索“会聚重编码”,我们提出了这个术语来判断特定编辑位点的潜在修复功能。对于众所周知的哺乳动物 Gln>Arg(Q>R)重编码位点,其在脊椎动物基因组中的祖先状态是编辑前的 Gln,而所有 470 个可用的哺乳动物基因组严格避免了其他三种在蛋白质中实现 Arg 的等效方式。His>Arg 中没有会聚重编码,或者 Gln 密码子上没有同义突变,可以归因于编辑基序和结构的强烈维持,但直接的 A-to-G 突变缺失是极其出乎意料的。基于类似的想法,我们在果蝇属中发现了会聚重编码的情况,降低了它们具有修复功能的可能性。总之,我们定义了一个有趣的会聚重编码场景,其发生可以作为判断一个重编码位点是否具有单一修复作用的初步判断。我们的工作为 RNA 编辑的自然选择和进化提供了新的见解。

相似文献

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Learning from the Codon Table: Convergent Recoding Provides Novel Understanding on the Evolution of A-to-I RNA Editing.从密码子表中学习:会聚重编码为 A-to-I RNA 编辑的进化提供了新的认识。
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Signal peptides restrict genome evolution and A-to-I RNA editing.信号肽限制基因组进化和A到I的RNA编辑。
NAR Genom Bioinform. 2025 Jul 11;7(3):lqaf096. doi: 10.1093/nargab/lqaf096. eCollection 2025 Sep.
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Systematic revelation and meditation on the significance of long exons using representative eukaryotic genomes.使用代表性真核生物基因组对长外显子的意义进行系统揭示和思考。

本文引用的文献

1
Conserved A-to-I RNA editing with non-conserved recoding expands the candidates of functional editing sites.保守的 A-to-I RNA 编辑与非保守的重编码扩展了功能编辑位点的候选者。
Fly (Austin). 2024 Dec;18(1):2367359. doi: 10.1080/19336934.2024.2367359. Epub 2024 Jun 18.
2
Unveiling the A-to-I mRNA editing machinery and its regulation and evolution in fungi.揭示真菌中的 A-to-I mRNA 编辑机制及其调控和进化。
Nat Commun. 2024 May 10;15(1):3934. doi: 10.1038/s41467-024-48336-8.
3
Comparative genomic analyses reveal evidence for adaptive A-to-I RNA editing in insect gene.
BMC Genomics. 2025 Mar 24;26(1):290. doi: 10.1186/s12864-025-11504-1.
4
Host-dependent C-to-U RNA editing in SARS-CoV-2 creates novel viral genes with optimized expressibility.新冠病毒(SARS-CoV-2)宿主依赖性 C 到 U RNA 编辑产生具有优化表达能力的新型病毒基因。
Front Cell Infect Microbiol. 2024 Oct 9;14:1476605. doi: 10.3389/fcimb.2024.1476605. eCollection 2024.
5
An orthology-based methodology as a complementary approach to retrieve evolutionarily conserved A-to-I RNA editing sites.基于同源性的方法作为一种补充方法,以检索进化上保守的 A-to-I RNA 编辑位点。
RNA Biol. 2024 Jan;21(1):29-45. doi: 10.1080/15476286.2024.2397757. Epub 2024 Sep 10.
比较基因组分析揭示了昆虫基因中适应性 A-to-I RNA 编辑的证据。
Epigenetics. 2024 Dec;19(1):2333665. doi: 10.1080/15592294.2024.2333665. Epub 2024 Mar 25.
4
The first A-to-I RNA editome of hemipteran species Coridius chinensis reveals overrepresented recoding and prevalent intron editing in early-diverging insects.半翅目昆虫中华稻缘蝽的首个 A-to-I RNA 编辑组揭示了早期分化昆虫中过表达的重编码和普遍的内含子编辑。
Cell Mol Life Sci. 2024 Mar 13;81(1):136. doi: 10.1007/s00018-024-05175-6.
5
Adaptive advantages of restorative RNA editing in fungi for resolving survival-reproduction trade-offs.真菌中修复性 RNA 编辑的适应性优势,有助于解决生存-繁殖权衡问题。
Sci Adv. 2024 Jan 5;10(1):eadk6130. doi: 10.1126/sciadv.adk6130.
6
Deep transcriptome profiling reveals limited conservation of A-to-I RNA editing in Xenopus.深度转录组分析揭示爪蟾中 A 到 I RNA 编辑的有限保守性。
BMC Biol. 2023 Nov 9;21(1):251. doi: 10.1186/s12915-023-01756-2.
7
Genome-Wide Analysis on Driver and Passenger RNA Editing Sites Suggests an Underestimation of Adaptive Signals in Insects.全基因组分析驱动和乘客 RNA 编辑位点表明昆虫中的适应性信号被低估了。
Genes (Basel). 2023 Oct 17;14(10):1951. doi: 10.3390/genes14101951.
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A full repertoire of Hemiptera genomes reveals a multi-step evolutionary trajectory of auto-RNA editing site in insect gene.一组完整的半翅目基因组揭示了昆虫基因中自动 RNA 编辑位点的多步骤进化轨迹。
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Autorecoding A-to-I RNA editing sites in the gene underwent compensatory gains and losses in major insect clades.基因中的自编码 A-to-I RNA 编辑位点在主要昆虫类群中经历了代偿性的增益和损失。
RNA. 2023 Oct;29(10):1509-1519. doi: 10.1261/rna.079682.123. Epub 2023 Jul 14.
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Adaptation of A-to-I RNA editing in bacteria, fungi, and animals.细菌、真菌和动物中A到I RNA编辑的适应性变化。
Front Microbiol. 2023 May 24;14:1204080. doi: 10.3389/fmicb.2023.1204080. eCollection 2023.