Lee Jaehun, Ju Misong, Cho Ouk Hyun, Kim Younghye, Nam Ki Tae
Department of Materials Science and Engineering Seoul National University Seoul 08826 Republic of Korea.
Adv Sci (Weinh). 2018 Nov 15;6(4):1801255. doi: 10.1002/advs.201801255. eCollection 2019 Feb 20.
The self-assembly of biomolecules can provide a new approach for the design of functional systems with a diverse range of hierarchical nanoarchitectures and atomically defined structures. In this regard, peptides, particularly short peptides, are attractive building blocks because of their ease of establishing structure-property relationships, their productive synthesis, and the possibility of their hybridization with other motifs. Several assembling peptides, such as ionic-complementary peptides, cyclic peptides, peptide amphiphiles, the Fmoc-peptide, and aromatic dipeptides, are widely studied. Recently, studies on material synthesis and the application of tyrosine-rich short peptide-based systems have demonstrated that tyrosine units serve as not only excellent assembly motifs but also multifunctional templates. Tyrosine has a phenolic functional group that contributes to π-π interactions for conformation control and efficient charge transport by proton-coupled electron-transfer reactions in natural systems. Here, the critical roles of the tyrosine motif with respect to its electrochemical, chemical, and structural properties are discussed and recent discoveries and advances made in tyrosine-rich short peptide systems from self-assembled structures to peptide/inorganic hybrid materials are highlighted. A brief account of the opportunities in design optimization and the applications of tyrosine peptide-based biomimetic materials is included.
生物分子的自组装可为设计具有各种层次纳米结构和原子级定义结构的功能系统提供一种新方法。在这方面,肽,尤其是短肽,是有吸引力的构建单元,因为它们易于建立结构-性质关系、能够高效合成,并且有可能与其他基序杂交。几种组装肽,如离子互补肽、环肽、肽两亲分子、芴甲氧羰基肽和芳香二肽,都得到了广泛研究。最近,对富含酪氨酸的短肽基系统的材料合成及应用的研究表明,酪氨酸单元不仅是出色的组装基序,也是多功能模板。酪氨酸具有酚官能团,在天然系统中,该官能团通过质子耦合电子转移反应有助于π-π相互作用以控制构象并实现高效电荷传输。在此,讨论了酪氨酸基序在其电化学、化学和结构性质方面的关键作用,并重点介绍了富含酪氨酸的短肽系统从自组装结构到肽/无机杂化材料方面的最新发现和进展。还简要介绍了基于酪氨酸肽的仿生材料在设计优化和应用方面的机遇。