A paradigm shift: analytical ultracentrifugation as a multi-attribute platform method in targeted protein degradation.

IF 2.2 4区 生物学 Q3 BIOPHYSICS
Alexander E Yarawsky, Judith A Ronau, Tiffany A Thibaudeau, Aaron C Ehlinger, Gekleng Chhor, Suki M Hyman, Michelle A Estrada, Vladimir Stojkovic, Michael T DeLion, Anil Vasudevan, Justin M Reitsma, Scott E Warder, Lake N Paul
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引用次数: 0

Abstract

Targeted protein degradation (TPD) has garnered appreciable interest in drug discovery due to its unique mechanism of action - degradation of a target in an event-driven manner, instead of traditional occupancy-driven inhibitor-based therapies. This is achieved by employing mono- or hetero-bifunctional small molecules known as degraders to induce the proximity of two proteins: a target protein and an E3 ubiquitin ligase, ultimately resulting in clearance of the target protein by the cell's inherent degradation machinery. A critical step in this pathway is ternary complex formation (TCF) between the ligase, degrader molecule, and the target protein. Although a bevy of biochemical, biophysical, cellular and structural approaches have been used to characterize degrader-induced ternary complexes, several knowledge gaps remain, such as stoichiometry and how much ternary complex is formed in solution. Analytical ultracentrifugation (AUC) is a biophysical method that is uniquely suited to address these questions, yet to this point has been surprisingly overlooked as an ideal method to characterize degrader candidates. In this study, we leveraged sedimentation velocity AUC (SV-AUC) to profile the degrader-induced ternary complex formation between Bruton's tyrosine kinase (BTK) and Cereblon (CRBN), allowing for evaluation of multiple attributes including sample purity, percent ternary complex, binding and kinetic rate constants, and hydrodynamics. We show that sedimentation equilibrium AUC (SE-AUC) can further complement the SV-AUC data with accurate molecular weight estimates of the ternary complex to confirm stoichiometry. This work demonstrates that AUC can be used both as a highly informative platform method for rapid characterization of candidate degrader compounds and as a rigorous method for elucidating additional details of the system.

靶向蛋白质降解(TPD)因其独特的作用机制--以事件驱动的方式降解靶标,而非传统的基于抑制剂的占据驱动疗法,在药物发现领域引起了极大的兴趣。这是通过使用被称为降解剂的单官能团或杂双官能团小分子来诱导两种蛋白质(靶蛋白和 E3 泛素连接酶)接近,最终由细胞固有的降解机制清除靶蛋白。这一途径的关键步骤是在连接酶、降解分子和目标蛋白之间形成三元复合物(TCF)。尽管已经使用了大量的生物化学、生物物理、细胞和结构方法来描述降解剂诱导的三元复合物,但仍存在一些知识空白,如化学计量和溶液中形成的三元复合物的数量。分析超速离心法(AUC)是一种生物物理方法,非常适合解决这些问题,但迄今为止,它作为表征候选降解剂的理想方法却被忽视了,这一点令人惊讶。在这项研究中,我们利用沉降速度 AUC(SV-AUC)来描述降解剂诱导的布鲁顿酪氨酸激酶(BTK)和脑龙(CRBN)之间形成的三元复合物,从而评估多种属性,包括样品纯度、三元复合物百分比、结合和动力学速率常数以及流体力学。我们的研究表明,沉降平衡 AUC(SE-AUC)可以进一步补充 SV-AUC 数据,准确估计三元复合物的分子量,从而确认化学计量学。这项工作表明,AUC 既可以作为一种信息量很大的平台方法,用于快速鉴定候选降解剂化合物,也可以作为一种严格的方法,用于阐明系统的其他细节。
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来源期刊
European Biophysics Journal
European Biophysics Journal 生物-生物物理
CiteScore
4.30
自引率
0.00%
发文量
43
审稿时长
6-12 weeks
期刊介绍: The journal publishes papers in the field of biophysics, which is defined as the study of biological phenomena by using physical methods and concepts. Original papers, reviews and Biophysics letters are published. The primary goal of this journal is to advance the understanding of biological structure and function by application of the principles of physical science, and by presenting the work in a biophysical context. Papers employing a distinctively biophysical approach at all levels of biological organisation will be considered, as will both experimental and theoretical studies. The criteria for acceptance are scientific content, originality and relevance to biological systems of current interest and importance. Principal areas of interest include: - Structure and dynamics of biological macromolecules - Membrane biophysics and ion channels - Cell biophysics and organisation - Macromolecular assemblies - Biophysical methods and instrumentation - Advanced microscopics - System dynamics.
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