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碳氢化合物钉肽:原理、实践与进展。

Hydrocarbon-stapled peptides: principles, practice, and progress.

作者信息

Walensky Loren D, Bird Gregory H

机构信息

Department of Pediatric Oncology, Dana-Farber Cancer Institute , Boston, Massachusetts 02215, United States.

出版信息

J Med Chem. 2014 Aug 14;57(15):6275-88. doi: 10.1021/jm4011675. Epub 2014 Mar 6.

Abstract

Protein structure underlies essential biological processes and provides a blueprint for molecular mimicry that drives drug discovery. Although small molecules represent the lion's share of agents that target proteins for therapeutic benefit, there remains no substitute for the natural properties of proteins and their peptide subunits in the majority of biological contexts. The peptide α-helix represents a common structural motif that mediates communication between signaling proteins. Because peptides can lose their shape when taken out of context, developing chemical interventions to stabilize their bioactive structure remains an active area of research. The all-hydrocarbon staple has emerged as one such solution, conferring α-helical structure, protease resistance, cellular penetrance, and biological activity upon successful incorporation of a series of design and application principles. Here, we describe our more than decade-long experience in developing stapled peptides as biomedical research tools and prototype therapeutics, highlighting lessons learned, pitfalls to avoid, and keys to success.

摘要

蛋白质结构是基本生物学过程的基础,并为推动药物发现的分子模拟提供了蓝图。尽管小分子在用于治疗的靶向蛋白质的药物中占了绝大部分,但在大多数生物学环境中,蛋白质及其肽亚基的天然特性仍然无可替代。肽α-螺旋是一种常见的结构基序,介导信号蛋白之间的通讯。由于肽在脱离特定环境时可能会失去其形状,因此开发化学干预措施以稳定其生物活性结构仍然是一个活跃的研究领域。全碳氢化合物钉合已成为一种解决方案,通过成功纳入一系列设计和应用原则,赋予α-螺旋结构、蛋白酶抗性、细胞穿透性和生物活性。在此,我们描述了我们在开发钉合肽作为生物医学研究工具和原型治疗药物方面超过十年的经验,强调了吸取的教训、要避免的陷阱以及成功的关键。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f6fd/4136684/7cd77154dd7f/jm-2013-011675_0002.jpg

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