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肽凝聚物:形成、机制及生物学应用

Peptide Coacervates: Formation, Mechanism, and Biological Applications.

作者信息

Yuan Jiewei, Yang Yufan, Dai Ke, Fakhrullin Rawil, Li Hong, Zhou Peng, Yuan Chengqian, Yan Xuehai

机构信息

College of Chemistry and Chemical Engineering, Xi'an Shiyou University, Xi'an 710065, China.

State Key Laboratory of Biopharmaceutical Preparation and Delivery, Institute of Process Engineering, Chinese Academy of Sciences, Beijing 100190, China.

出版信息

ACS Appl Mater Interfaces. 2025 May 14;17(19):27697-27712. doi: 10.1021/acsami.5c04775. Epub 2025 Apr 30.

Abstract

Biomolecular coacervates, dynamic compartments formed via liquid-liquid phase separation (LLPS), are essential for orchestrating intracellular processes and have emerged as versatile tools in bioengineering. Peptides, with their modular amino acid sequences, exhibit unique potential in coacervate design due to their ability to undergo LLPS while offering precise control over molecular architecture and environmental responsiveness. Their simplicity, synthetic accessibility, and tunability make peptide-based coacervates particularly attractive for biomedical and materials applications. However, the formation and stability of these systems depend on a delicate balance of intrinsic factors (e.g., sequence charge, hydrophobicity, and chain length) and extrinsic conditions (e.g., pH, ionic strength, and temperature), necessitating a deeper understanding of their interplay. This review synthesizes recent advances in the molecular mechanisms driving peptide coacervation, emphasizing how sequence design and environmental cues govern phase behavior. We further highlight groundbreaking applications, from drug delivery platforms to protocell mimics, and discuss strategies to translate mechanistic insights into functional materials. By bridging fundamental principles with innovative applications, this work aims to accelerate the development of peptide coacervates as programmable, multifunctional systems, offering a roadmap for next-generation biochemical technologies.

摘要

生物分子凝聚体是通过液-液相分离(LLPS)形成的动态区室,对协调细胞内过程至关重要,并已成为生物工程中用途广泛的工具。肽具有模块化的氨基酸序列,由于其能够进行液-液相分离,同时能对分子结构和环境响应性进行精确控制,因此在凝聚体设计中展现出独特的潜力。它们的简单性、合成可及性和可调性使得基于肽的凝聚体在生物医学和材料应用中特别具有吸引力。然而,这些系统的形成和稳定性取决于内在因素(如序列电荷、疏水性和链长)和外在条件(如pH值、离子强度和温度)之间的微妙平衡,这就需要更深入地了解它们之间的相互作用。本综述综合了驱动肽凝聚的分子机制的最新进展,强调了序列设计和环境线索如何控制相行为。我们还重点介绍了从药物递送平台到原始细胞模拟物等开创性应用,并讨论了将机理见解转化为功能材料的策略。通过将基本原理与创新应用相结合,这项工作旨在加速肽凝聚体作为可编程多功能系统的开发,为下一代生化技术提供路线图。

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