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细胞降解动力学在理解靶向蛋白降解机制中的重要性。

The importance of cellular degradation kinetics for understanding mechanisms in targeted protein degradation.

机构信息

Promega Corporation, 5430 East Cheryl Drive, Madison, WI, 53711, USA.

出版信息

Chem Soc Rev. 2022 Jul 18;51(14):6210-6221. doi: 10.1039/d2cs00339b.

Abstract

Targeted protein degradation has exploded over the past several years due to preclinical and early clinical therapeutic success of numerous compounds, and the emergence of new degradation modalities, which has broadened the definition of what a degrader is. The most characterized and well-studied small molecule degraders are molecular glues and proteolysis targeting chimeras (PROTACs). These degraders induce a ternary complex between a target protein, degrader, and E3 ligase component, resulting in ubiquitination and subsequent degradation of the target protein the ubiquitin proteasomal system (UPS). This event-driven process requires success at all steps through a complex cascade of events. As more systems, degraders, and targets are tested, it has become increasingly clear that achieving degradation is only the first critical milestone in a degrader development program. Rather highly efficacious degraders require a combination of multiple optimized parameters: rapid degradation, high potency, high maximal degradation (), and sustained loss of target without re-dosing. Success to meet these more rigorous goals depends upon the ability to characterize and understand the dynamic cellular degradation profiles and relate them to the underlying mechanism for any given target treated with a specific concentration of degrader. From this starting point, optimization and fine tuning of multiple kinetic parameters such as how fast degradation occurs (the rate), how much of the target is degraded (the extent), and how long the target remains degraded (the duration) can be performed. In this review we explore the diversity of cellular kinetic degradation profiles which can arise after molecular glue and PROTAC treatment and the potential implications of these varying responses. As the overall degradation kinetics are a sum of individual mechanistic steps, each with their own kinetic contributions, we discuss the ways in which changes at any one of these steps could potentially influence the resultant kinetic degradation profiles. Looking forward, we address the importance in characterizing the kinetics of target protein loss in the early stages of degrader design and how this will enable more rapid discovery of therapeutic agents to elicit desired phenotypic outcomes.

摘要

由于许多化合物在临床前和早期临床试验中的治疗成功,以及新的降解方式的出现,靶向蛋白降解在过去几年中得到了迅猛发展。这拓宽了降解剂的定义。最具代表性和研究最充分的小分子降解剂是分子胶和蛋白水解靶向嵌合体(PROTAC)。这些降解剂诱导靶蛋白、降解剂和 E3 连接酶组件之间形成三元复合物,导致靶蛋白泛素化和随后的降解——即泛素蛋白酶体系统(UPS)。这个事件驱动的过程需要在一个复杂的级联事件中成功完成所有步骤。随着更多的系统、降解剂和靶标被测试,越来越明显的是,实现降解只是降解剂开发项目的第一个关键里程碑。而高效的降解剂需要多种优化参数的结合:快速降解、高效力、高最大降解()和在不重新给药的情况下持续丧失靶标。要实现这些更严格的目标,需要具备对细胞降解谱进行特征描述和理解的能力,并将其与特定浓度降解剂处理特定靶标时的潜在机制联系起来。从这个起点出发,可以对多个动力学参数进行优化和微调,例如降解发生的速度(速率)、降解的靶标量(程度)以及靶标保持降解的时间(持续时间)。在这篇综述中,我们探讨了分子胶和 PROTAC 处理后可能出现的细胞动力学降解谱的多样性,以及这些不同反应的潜在影响。由于整体降解动力学是单个机制步骤的总和,每个步骤都有自己的动力学贡献,因此我们讨论了在这些步骤中的任何一个步骤发生变化时,如何潜在地影响最终的动力学降解谱。展望未来,我们将讨论在降解剂设计的早期阶段对靶蛋白丢失动力学进行特征描述的重要性,以及这将如何加速发现引发所需表型结果的治疗剂。

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