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TRPT1 介导的核酸 ADP-ribosylation 分子机制的结构和生化研究

Structural and biochemical insights into the molecular mechanism of TRPT1 for nucleic acid ADP-ribosylation.

机构信息

College of Life Sciences, Hebei Innovation Center for Bioengineering and Biotechnology, Institute of Life Sciences and Green Development, Hebei University, Baoding 071002, Hebei, China.

School of Life Sciences, Southern University of Science and Technology, Shenzhen 518055, Guangdong, China.

出版信息

Nucleic Acids Res. 2023 Aug 11;51(14):7649-7665. doi: 10.1093/nar/gkad525.

Abstract

Nucleic acid ADP-ribosylation has been established as a novel modification found in a wide diversity of prokaryotic and eukaryotic organisms. tRNA 2'-phosphotransferase 1 (TRPT1/TPT1/KptA) possesses ADP-ribosyltransferase (ART) activity and is able to ADP-ribosylate nucleic acids. However, the underlying molecular mechanism remains elusive. Here, we determined crystal structures of TRPT1s in complex with NAD+ from Homo sapiens, Mus musculus and Saccharomyces cerevisiae. Our results revealed that the eukaryotic TRPT1s adopt common mechanisms for both NAD+ and nucleic acid substrate binding. The conserved SGR motif induces a significant conformational change in the donor loop upon NAD+ binding to facilitate the catalytic reaction of ART. Moreover, the nucleic acid-binding residue redundancy provides structural flexibility to accommodate different nucleic acid substrates. Mutational assays revealed that TRPT1s employ different catalytic and nucleic acid-binding residues to perform nucleic acid ADP-ribosylation and RNA 2'-phosphotransferase activities. Finally, cellular assays revealed that the mammalian TRPT1 is able to promote endocervical HeLa cell survival and proliferation. Together, our results provide structural and biochemical insights into the molecular mechanism of TRPT1 for nucleic acid ADP-ribosylation.

摘要

核酸 ADP-核糖基化已被确定为一种新型修饰,存在于广泛的原核和真核生物中。tRNA 2′-磷酸转移酶 1(TRPT1/TPT1/KptA)具有 ADP-核糖基转移酶(ART)活性,能够 ADP-核糖基化核酸。然而,其潜在的分子机制仍不清楚。在这里,我们测定了来自人类、小鼠和酿酒酵母的 TRPT1 与 NAD+复合物的晶体结构。我们的结果表明,真核 TRPT1 采用了共同的机制来结合 NAD+和核酸底物。保守的 SGR 基序在 NAD+结合后诱导供体环发生显著的构象变化,从而促进 ART 的催化反应。此外,核酸结合残基的冗余为结合不同的核酸底物提供了结构灵活性。突变分析表明,TRPT1 采用不同的催化和核酸结合残基来执行核酸 ADP-核糖基化和 RNA 2′-磷酸转移酶活性。最后,细胞实验表明,哺乳动物 TRPT1 能够促进宫颈内 HeLa 细胞的存活和增殖。总之,我们的研究结果提供了结构和生化方面的见解,揭示了 TRPT1 进行核酸 ADP-核糖基化的分子机制。

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