通过战略性共价修饰防止蛋白质自结合

IF 1.8 4区 生物学 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY
Swetha Chintala, Simon H. Friedman
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引用次数: 0

摘要

蛋白质自相互作用导致聚集是蛋白质药物面临的主要挑战。它会导致一系列问题,包括免疫原性增加和活性丧失。在这项工作中,我们描述了一种阻断或拮抗驱动自结合的四元相互作用的方法。我们将这种方法应用于胰高血糖素,胰高血糖素是一种治疗性肽,因其由于自我相互作用而形成原纤维的倾向而闻名。我们合成了一种区域纯的普通原料,可以很容易地与潜在的阻断肽进行修饰,这些阻断肽代表了一系列化学类型(阴离子、阳离子、极性和非极性)。从这些合成材料中,我们确定了两种修饰的胰高血糖素,与未修饰的胰高血糖素相比,它们对纤维形成表现出显著的稳定性。三种互补的生物物理技术证实了这一点。这两个成功的修改引入多余的净电荷胰高血糖素,与整体静电排斥是在观察到的纤颤阻力的根源一致。这种方法可以潜在地应用于其他治疗性蛋白质,这些蛋白质遭受与自我关联相关的问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Preventing Protein Self-Association Through Strategic Covalent Modification

Protein self-interaction leading to aggregation is a major challenge facing protein pharmaceuticals. It leads to a range of problems, including increases in immunogenicity and loss of activity. In this work, we describe an approach for blocking or antagonizing the quaternary interactions that drive self-association. We applied the approach to glucagon, a therapeutic peptide known for its propensity to form fibrils due to self-interaction. We synthesized a regio-pure common feedstock that allowed easy modification with potential blocking peptides that represented a range of chemical types (anionic, cationic, polar, and nonpolar). From these synthesized materials, we identified two modified glucagons that showed significant stabilization against fibril formation compared with unmodified glucagon. This was confirmed by three complementary biophysical techniques. Both successful modifications introduced excess net charge to glucagon, consistent with overall electrostatic repulsion being at the root of the observed fibrillation resistance. This approach can potentially be applied to other therapeutic proteins that suffer from the problems associated with self-association.

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来源期刊
Journal of Peptide Science
Journal of Peptide Science 生物-分析化学
CiteScore
3.40
自引率
4.80%
发文量
83
审稿时长
1.7 months
期刊介绍: The official Journal of the European Peptide Society EPS The Journal of Peptide Science is a cooperative venture of John Wiley & Sons, Ltd and the European Peptide Society, undertaken for the advancement of international peptide science by the publication of original research results and reviews. The Journal of Peptide Science publishes three types of articles: Research Articles, Rapid Communications and Reviews. The scope of the Journal embraces the whole range of peptide chemistry and biology: the isolation, characterisation, synthesis properties (chemical, physical, conformational, pharmacological, endocrine and immunological) and applications of natural peptides; studies of their analogues, including peptidomimetics; peptide antibiotics and other peptide-derived complex natural products; peptide and peptide-related drug design and development; peptide materials and nanomaterials science; combinatorial peptide research; the chemical synthesis of proteins; and methodological advances in all these areas. The spectrum of interests is well illustrated by the published proceedings of the regular international Symposia of the European, American, Japanese, Australian, Chinese and Indian Peptide Societies.
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