Zhang Xiaoming, Yang Zhanshu, Lin Jiaxuan, Zhou Wei, Sun Nan, Jia Yi
School of Science, Minzu University of China, Beijing 100081, China.
Optoelectronics Research Centre, Minzu University of China, Beijing 100081, China.
Int J Mol Sci. 2025 Apr 23;26(9):3998. doi: 10.3390/ijms26093998.
Peptide molecules, as fundamental structural units in biological systems, play pivotal roles in diverse biological processes and have garnered substantial attention in biomolecular self-assembly research. Their structural simplicity and high design flexibility make peptides key players in the development of novel biomaterials. High-resolution imaging techniques have provided profound insights into peptide assembly. Recently, the development of cutting-edge technologies, such as super-resolution microscopy (SRM) with unparalleled spatiotemporal resolution, has further advanced peptide assembly research. These advancements enable both the mechanistic exploration of peptide assembly pathways and the rational design of peptide-based functional materials. In this mini review, we systematically examine the structural diversity of peptide assemblies, including micelles, tubes, particles, fibers and hydrogel, as investigated by various high-resolution imaging techniques, with a focus on their assembly characterization and dynamic process. We also summarize the interaction networks of peptide assemblies with proteins, polymers and microbes, providing further insight into the interactions between peptide assemblies and other molecules. Furthermore, we emphasize the transformative role of high-resolution imaging techniques in addressing long-standing challenges in peptide nanotechnology. We anticipate that this review will accelerate the advancement of peptide assembly characterization, thereby fostering the creation of next-generation functional biomaterials.
肽分子作为生物系统中的基本结构单元,在多种生物过程中发挥着关键作用,并在生物分子自组装研究中受到了广泛关注。它们结构简单且设计灵活性高,使其成为新型生物材料开发的关键因素。高分辨率成像技术为肽组装提供了深刻的见解。最近,诸如具有无与伦比的时空分辨率的超分辨率显微镜(SRM)等前沿技术的发展,进一步推动了肽组装研究。这些进展既能够对肽组装途径进行机理探索,也能够对基于肽的功能材料进行合理设计。在这篇小型综述中,我们系统地研究了通过各种高分辨率成像技术所研究的肽组装体的结构多样性,包括胶束、管、颗粒、纤维和水凝胶,重点关注它们的组装表征和动态过程。我们还总结了肽组装体与蛋白质、聚合物和微生物的相互作用网络,从而进一步深入了解肽组装体与其他分子之间的相互作用。此外,我们强调了高分辨率成像技术在解决肽纳米技术中长期存在的挑战方面的变革性作用。我们预计这篇综述将加速肽组装表征的进展,从而促进下一代功能性生物材料的创造。