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基于苯乙肼的探针显示分泌素-3参与热痛觉感受。

Phenelzine-based probes reveal Secernin-3 is involved in thermal nociception.

作者信息

Bustin Katelyn A, Shishikura Kyosuke, Chen Irene, Lin Zongtao, McKnight Nate, Chang Yuxuan, Wang Xie, Li Jing Jing, Arellano Eric, Pei Liming, Morton Paul D, Gregus Ann M, Buczynski Matthew W, Matthews Megan L

出版信息

bioRxiv. 2023 Feb 3:2023.02.02.526866. doi: 10.1101/2023.02.02.526866.

Abstract

Chemical platforms that facilitate both the identification and elucidation of new areas for therapeutic development are necessary but lacking. Activity-based protein profiling (ABPP) leverages active site-directed chemical probes as target discovery tools that resolve activity from expression and immediately marry the targets identified with lead compounds for drug design. However, this approach has traditionally focused on predictable and intrinsic enzyme functionality. Here, we applied our activity-based proteomics discovery platform to map non-encoded and post-translationally acquired enzyme functionalities (e.g. cofactors) using chemical probes that exploit the nucleophilic hydrazine pharmacophores found in a classic antidepressant drug (e.g. phenelzine, Nardil ). We show the probes are active and can map proteome-wide tissue-specific target engagement of the drug. In addition to engaging targets (flavoenzymes monoamine oxidase A/B) that are associated with the known therapeutic mechanism as well as several other members of the flavoenzyme family, the probes captured the previously discovered -terminal glyoxylyl (Glox) group of Secernin-3 (SCRN3) through a divergent mechanism, indicating this functional feature has biochemical activity in the brain. SCRN3 protein is ubiquitously expressed in the brain, yet gene expression is regulated by inflammatory stimuli. In an inflammatory pain mouse model, behavioral assessment of nociception showed male knockout mice selectively exhibited impaired thermal nociceptive sensitivity. Our study provides a guided workflow to entangle molecular (off)targets and pharmacological mechanisms for therapeutic development.

摘要

促进治疗开发新领域识别与阐释的化学平台是必要的,但目前尚不完善。基于活性的蛋白质谱分析(ABPP)利用活性位点导向的化学探针作为靶点发现工具,可从表达中分辨活性,并将鉴定出的靶点与用于药物设计的先导化合物直接结合。然而,这种方法传统上侧重于可预测的内在酶功能。在此,我们应用基于活性的蛋白质组学发现平台,使用利用经典抗抑郁药物(如苯乙肼,Nardil)中发现的亲核肼药效团的化学探针,来绘制非编码和翻译后获得的酶功能(如辅因子)图谱。我们表明这些探针具有活性,能够绘制该药物在全蛋白质组范围内的组织特异性靶点结合情况。除了与已知治疗机制相关的靶点(黄素酶单胺氧化酶A/B)以及黄素酶家族的其他几个成员外,这些探针还通过一种不同的机制捕获了先前发现的Secernin-3(SCRN3)的N端乙醛酰基(Glox)基团,表明这一功能特征在大脑中具有生化活性。SCRN3蛋白在大脑中普遍表达,但其基因表达受炎症刺激调控。在炎症性疼痛小鼠模型中,对伤害感受的行为评估显示,雄性基因敲除小鼠选择性地表现出热伤害感受敏感性受损。我们的研究提供了一个指导性工作流程,用于梳理治疗开发中的分子(脱)靶点和药理机制。

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