State Key Laboratory of Fluid Power and Mechatronic Systems, School of Mechanical Engineering, Zhejiang University, Hangzhou 310027, China.
Future Science Research Institute, Hangzhou Global Scientific and Technological Innovation Centre, Hangzhou 311200, China.
Chem Soc Rev. 2022 Aug 15;51(16):6936-6947. doi: 10.1039/d2cs00122e.
Peptide self-assemblies show intriguing and tunable physicochemical properties, and thus have been attracting increasing interest over the last two decades. However, the micro/nano-scale dimensions of the self-assemblies severely restrict their extensive applications. Inspired by nature, to genuinely realize the practical utilization of the bio-organic super-architectures, it is beneficial to further organize the peptide self-assemblies to integrate the properties of the individual supermolecules and fabricate higher-level organizations for smart functional devices. Therefore, cumulative studies have been reported on peptide microfabrication giving rise to diverse properties. This review summarizes the recent development of the microfabrication of peptide self-assemblies, discussing each methodology along with the diverse properties and practical applications of the engineered peptide large-scale, highly-ordered organizations. Finally, the current limitations of the state-of-the-art microfabrication strategies are critically assessed and alternative solutions are suggested.
肽自组装体表现出有趣且可调的物理化学性质,因此在过去二十年中引起了越来越多的关注。然而,自组装体的微/纳米尺度严重限制了它们的广泛应用。受自然启发,为了真正实现生物有机超结构的实际利用,进一步组织肽自组装体以整合单个超分子的性质并为智能功能设备制造更高层次的组织是有益的。因此,已经有关于肽微制造的累积研究产生了不同的性质。本综述总结了肽自组装体微制造的最新进展,讨论了每种方法以及工程肽大规模、高度有序组织的不同性质和实际应用。最后,批判性地评估了最先进的微制造策略的当前局限性,并提出了替代解决方案。