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The Interplay of Disulfide Bonds, alpha-Helicity, and Hydrophobic Interactions Leads to Ultrahigh Proteolytic Stability of Peptides

机译:二硫键,α-螺旋和疏水相互作用的相互作用导致肽的超高蛋白水解稳定性

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摘要

The contribution of noncovalent interactions to the stability of naturally occurring peptides and proteins has been generally acknowledged, though how these can be rationally manipulated to improve the proteolytic stability of synthetic peptides remains to be explored. In this study, a platform to enhance the proteolytic stability of peptides was developed by controllably dimerizing them into a-helical dimers, connected by two disulfide bonds. This platform not only directs peptides toward an a-helical conformation but permits control of the interfacial hydrophobic interactions between the peptides of the dimer. Using two model dimeric systems constructed from the N-terminal alpha-helix of RNase A and known inhibitors for the E3 ubiquitin ligase MDM2 (and its homologue MDMX), a deeper understanding into the interplay of disulfide bonds, alpha-helicity, and hydrophobic interactions on enhanced proteolytic stability was sought out. Results reveal that all three parameters play an important role on attaining ultrahigh proteolytic resistance, a concept that can be exploited for the development of future peptide therapeutics. The understanding gained through this study will enable this strategy to be tailored to new peptides because the proposed strategy displays substantial tolerance to sequence permutation. It thus appears promising for conveniently creating prodrugs composed entirely of the therapeutic peptide itself (i.e., in the form of a dimer).
机译:非共价相互作用对天然存在的肽和蛋白质的稳定性的贡献已得到普遍认可,尽管如何合理地操纵它们以改善合成肽的蛋白水解稳定性仍有待探索。在这项研究中,通过可控制地将其二聚为α-螺旋二聚体(通过两个二硫键连接),开发了增强肽的蛋白水解稳定性的平台。该平台不仅将肽引导至α-螺旋构象,而且允许控制二聚体的肽之间的界面疏水相互作用。使用由RNase A的N末端α-螺旋和已知的E3泛素连接酶MDM2抑制剂(及其同系物MDMX)构建的两个模型二聚体系统,可以更深入地了解二硫键,α-螺旋和疏水相互作用的相互作用寻找增强蛋白水解稳定性的方法。结果表明,所有三个参数在获得超高蛋白水解抗性方面都起着重要作用,这一概念可用于开发未来的肽治疗剂。通过这项研究获得的理解将使该策略适合于新肽,因为拟议的策略显示出对序列置换的显着耐受性。因此,对于方便地制备完全由治疗性肽本身(即,二聚体形式)组成的前药似乎是有希望的。

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