Quantitative Measurement of Rate of Targeted Protein Degradation

IF 3.5 2区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY ACS Chemical Biology Pub Date : 2024-07-09 DOI:10.1021/acschembio.4c00262
Thomas L. Lynch IV, Violeta L. Marin, Ryan A. McClure, Colin Phipps, Judith A. Ronau, Milad Rouhimoghadam, Ashley M. Adams, Soumya Kandi, Malerie L. Wolke, Andrea G. Shergalis, Gregory K. Potts, Omprakash Nacham, Paul Richardson, Stephan J. Kakavas, Gekleng Chhor, Gary J. Jenkins, Kevin R. Woller, Scott E. Warder, Anil Vasudevan and Justin M. Reitsma*, 
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Abstract

Targeted protein degradation (TPD) is a therapeutic approach that leverages the cell’s natural machinery to degrade targets instead of inhibiting them. This is accomplished by using mono- or bifunctional small molecules designed to induce the proximity of target proteins and E3 ubiquitin ligases, leading to ubiquitination and subsequent proteasome-dependent degradation of the target. One of the most significant attributes of the TPD approach is its proposed catalytic mechanism of action, which permits substoichiometric exposure to achieve the desired pharmacological effects. However, apart from one in vitro study, studies supporting the catalytic mechanism of degraders are largely inferred based on potency. A more comprehensive understanding of the degrader catalytic mechanism of action can help aspects of compound development. To address this knowledge gap, we developed a workflow for the quantitative measurement of the catalytic rate of degraders in cells. Comparing a selective and promiscuous BTK degrader, we demonstrate that both compounds function as efficient catalysts of BTK degradation, with the promiscuous degrader exhibiting faster rates due to its ability to induce more favorable ternary complexes. By leveraging computational modeling, we show that the catalytic rate is highly dynamic as the target is depleted from cells. Further investigation of the promiscuous kinase degrader revealed that the catalytic rate is a better predictor of optimal degrader activity toward a specific target compared to degradation magnitude alone. In summary, we present a versatile method for mapping the catalytic activity of any degrader for TPD in cells.

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定量测量目标蛋白质降解率
靶向蛋白质降解(TPD)是一种治疗方法,它利用细胞的天然机制来降解靶点,而不是抑制它们。具体方法是使用单功能或双功能小分子,诱导靶蛋白与 E3 泛素连接酶接近,导致泛素化,随后靶蛋白酶体依赖性降解。TPD 方法最重要的特性之一是它所提出的催化作用机制,它允许亚计量暴露,以达到所需的药理作用。然而,除了一项体外研究外,支持降解剂催化机制的研究大多是根据药效推断的。更全面地了解降解剂的催化作用机制有助于化合物的开发。为了填补这一知识空白,我们开发了一种定量测量细胞中降解剂催化率的工作流程。通过比较选择性 BTK 降解剂和杂合性 BTK 降解剂,我们证明这两种化合物都是高效的 BTK 降解催化剂,而杂合性降解剂由于能诱导出更有利的三元复合物而表现出更快的催化速率。通过利用计算建模,我们发现随着细胞中目标物的耗竭,催化速率也会发生很大的变化。对杂合激酶降解器的进一步研究表明,与降解幅度本身相比,催化率更能预测降解器对特定靶点的最佳活性。总之,我们提出了一种多功能方法,用于绘制细胞中任何降解剂对 TPD 的催化活性图。
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来源期刊
ACS Chemical Biology
ACS Chemical Biology 生物-生化与分子生物学
CiteScore
7.50
自引率
5.00%
发文量
353
审稿时长
3.3 months
期刊介绍: ACS Chemical Biology provides an international forum for the rapid communication of research that broadly embraces the interface between chemistry and biology. The journal also serves as a forum to facilitate the communication between biologists and chemists that will translate into new research opportunities and discoveries. Results will be published in which molecular reasoning has been used to probe questions through in vitro investigations, cell biological methods, or organismic studies. We welcome mechanistic studies on proteins, nucleic acids, sugars, lipids, and nonbiological polymers. The journal serves a large scientific community, exploring cellular function from both chemical and biological perspectives. It is understood that submitted work is based upon original results and has not been published previously.
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