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High-Throughput Biophysical Analysis of Protein Therapeutics to Examine Interrelationships Between Aggregate Formation and Conformational Stability

机译:蛋白质疗法的高通量生物物理分析以检查聚集体形成与构象稳定性之间的相互关系

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摘要

Stabilization and formulation of therapeutic proteins against physical instability, both structural alterations and aggregation, is particularly challenging not only due to each protein’s unique physicochemical characteristics but also their susceptibility to the surrounding milieu (pH, ionic strength, excipients, etc.) as well as various environmental stresses (temperature, agitation, lyophilization, etc.). The use of high-throughput techniques can significantly aid in the evaluation of stabilizing solution conditions by permitting a more rapid evaluation of a large matrix of possible combinations. In this mini-review, we discuss both key physical degradation pathways observed for protein-based drugs and the utility of various high-throughput biophysical techniques to aid in protein formulation development to minimize their occurrence. We then focus on four illustrative case studies with therapeutic protein candidates of varying sizes, shapes and physicochemical properties to explore different analytical challenges in monitoring protein physical instability. These include an IgG2 monoclonal antibody, an albumin-fusion protein, a recombinant pentameric plasma glycoprotein, and an antibody fragment (Fab). Future challenges and opportunities to improve and apply high-throughput approaches to protein formulation development are also discussed.
机译:不仅由于每种蛋白质的独特理化特性,而且由于其对周围环境的易感性(pH,离子强度,赋形剂等)以及对蛋白质的抵抗性,使结构稳定和稳定的治疗性蛋白质具有结构变化和聚集的特性,尤其具有挑战性。各种环境压力(温度,搅拌,冻干等)。高通量技术的使用通过允许对可能组合的大矩阵进行更快速的评估,可以显着地帮助评估稳定溶液的条件。在本小型审查中,我们讨论了基于蛋白质的药物观察到的关键物理降解途径,以及各种高通量生物物理技术在辅助蛋白质制剂开发以最大程度减少其发生中的实用性。然后,我们针对四个具有不同大小,形状和理化性质的治疗性蛋白质候选物,进行了四个示例性案例研究,以探索监测蛋白质物理不稳定性的不同分析挑战。这些包括IgG2单克隆抗体,白蛋白融合蛋白,重组五聚体血浆糖蛋白和抗体片段(Fab)。还讨论了未来挑战和机遇,这些挑战和机遇将改善高通量方法并将其应用于蛋白质制剂开发。

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