Chemical and Environmental Engineering, School of Engineering, RMIT University, Melbourne, VIC, 3000, Australia.
Department of Medical Oncology, Dana-Farber Cancer Institute, Harvard Medical School, Boston, MA, 02115, USA.
Nat Commun. 2021 Jan 8;12(1):149. doi: 10.1038/s41467-020-20375-x.
Intrinsically disordered proteins have dramatically changed the structure-function paradigm of proteins in the 21 century. Resilin is a native elastic insect protein, which features intrinsically disordered structure, unusual multi-stimuli responsiveness and outstanding resilience. Advances in computational techniques, polypeptide synthesis methods and modular protein engineering routines have led to the development of novel resilin-like polypeptides (RLPs) including modular RLPs, expanding their applications in tissue engineering, drug delivery, bioimaging, biosensors, catalysis and bioelectronics. However, how the responsive behaviour of RLPs is encoded in the amino acid sequence level remains elusive. This review summarises the milestones of RLPs, and discusses the development of modular RLP-based biomaterials, their current applications, challenges and future perspectives. A perspective of future research is that sequence and responsiveness profiling of RLPs can provide a new platform for the design and development of new modular RLP-based biomaterials with programmable structure, properties and functions.
在 21 世纪,无序蛋白极大地改变了人们对蛋白质结构-功能的认知模式。弹性蛋白是一种天然的弹性昆虫蛋白,具有无序结构、独特的多刺激响应和出色的弹性恢复能力。计算技术、多肽合成方法和模块化蛋白工程规程的进步,导致了新型弹性蛋白样多肽(RLP)的发展,包括模块化 RLP,这扩展了它们在组织工程、药物输送、生物成像、生物传感器、催化和生物电子学等领域的应用。然而,RLP 的响应行为是如何在氨基酸序列水平上编码的,目前仍不得而知。本文总结了 RLP 的里程碑,并讨论了基于模块化 RLP 的生物材料的发展、它们的当前应用、挑战和未来展望。未来研究的一个方向是,对 RLP 的序列和响应性进行分析,可以为设计和开发具有可编程结构、性能和功能的新型基于模块化 RLP 的生物材料提供一个新平台。