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对TRMT112具有变构激动作用的复合形式受限共价TRMT112配体。

Complexoform-restricted covalent TRMT112 ligands that allosterically agonize METTL5.

作者信息

Goetzke F Wieland, Bernard Steffen M, Ju Cheng-Wei, Pollock Jonathan, DeMeester Kristen E, Gross Jacob, Simon Gabriel M, He Chuan, Melillo Bruno, Cravatt Benjamin F

机构信息

Department of Chemistry, Scripps Research, La Jolla, CA, USA.

Vividion Therapeutics, San Diego, CA, USA.

出版信息

bioRxiv. 2025 May 25:2025.05.25.655995. doi: 10.1101/2025.05.25.655995.

Abstract

Adaptors serve as hubs to regulate diverse protein complexes in cells. This multitude of functions can complicate the study of adaptors, as their genetic disruption may simultaneously impair the activities of several compositionally distinct complexes (or adaptor 'complexoforms'). Here we describe the chemical proteomic discovery of bicyclopyrrolidine acrylamide stereoprobes that react with cysteine-100 (C100) of the methyltransferase (MT) adaptor TRMT112 in human cells. Curiously, the stereoprobes showed negligible reactivity with uncomplexed recombinant TRMT112, and we found that this interaction was restored excluively in the presence of METTL5, but not other MTs. A co-crystal structure revealed stereoprobe binding to a composite pocket proximal to C100 of TRMT112 that is templated by METTL5 and absent in other TRMT112:MT complexes. Structural rearrangements promoted by stereoprobe binding in turn lead to allosteric agonism of METTL5, thus revealing how covalent ligands targeting a pleiotropic adaptor can confer partner-specific functional effects through reactivity with a single complexoform.

摘要

衔接蛋白作为枢纽调节细胞内多种蛋白质复合物。其功能多样,这使得对衔接蛋白的研究变得复杂,因为对其进行基因敲除可能会同时损害几种组成不同的复合物(或衔接蛋白“复合形式”)的活性。在此,我们描述了双环吡咯烷丙烯酰胺立体探针的化学蛋白质组学发现,这些探针可与人细胞中甲基转移酶(MT)衔接蛋白TRMT112的半胱氨酸100(C100)发生反应。奇怪的是,这些立体探针与未复合的重组TRMT112的反应性可忽略不计,并且我们发现这种相互作用仅在METTL5存在时才得以恢复,而在其他MT存在时则不然。共晶体结构揭示了立体探针与TRMT112的C100附近的一个复合口袋结合,该口袋由METTL5构建模板,而在其他TRMT112:MT复合物中不存在。立体探针结合所促进的结构重排进而导致METTL5的变构激动作用,从而揭示了靶向多效性衔接蛋白的共价配体如何通过与单一复合形式反应赋予伴侣特异性功能效应。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b5cb/12139762/289ecc151cbd/nihpp-2025.05.25.655995v1-f0006.jpg

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