State Key Laboratory of Biochemical Engineering, Institute of Process Engineering, Chinese Academy of Sciences, Beijing 100190, P. R. China.
University of Chinese Academy of Sciences Beijing 100049, P. R. China.
Theranostics. 2019 May 18;9(11):3249-3261. doi: 10.7150/thno.31814. eCollection 2019.
Advances in supramolecular self-assembly have promoted the development of theranostics, the combination of both therapeutic and diagnostic functions in a single nanoplatform, which is closely associated with antitumor applications and has shown promising potential in personalized medicine. Peptide-modulated self-assembly serves as a versatile strategy for tumor supramolecular nanotheranostics possessing controllability, programmability, functionality and biosafety, thus promoting the translation of nanotheranostics from bench to bedside. In this review, we will focus on the self-assembly of peptide-photosensitizers and peptide-drugs as well as multicomponent cooperative self-assembly for the fabrication of nanotheranostics that integrate diagnosis and therapeutics for antitumor applications. Emphasis will be placed on building block design, interaction strategies and the potential relationships between their structures and properties, aiming to increase understanding of the critical role of peptide-modulated self-assembly in advancing antitumor supramolecular nanotheranostics.
超分子自组装的进展推动了治疗学的发展,即治疗和诊断功能在单个纳米平台中的结合,这与抗肿瘤应用密切相关,并在个性化医学中显示出有前途的潜力。肽调节的自组装是一种多功能策略,用于具有可控性、可编程性、功能性和生物安全性的肿瘤超分子纳米治疗学,从而促进了纳米治疗学从实验室到临床的转化。在这篇综述中,我们将重点关注肽-光敏剂和肽-药物的自组装以及用于抗肿瘤应用的整合诊断和治疗的纳米治疗学的多组分协同自组装。重点将放在构建块设计、相互作用策略以及它们的结构和性能之间的潜在关系上,旨在增加对肽调节自组装在推进抗肿瘤超分子纳米治疗学中的关键作用的理解。