Advanced Materials Institute, Qilu University of Technology (Shandong Academy of Sciences), Jinan 250014, China.
Department of Chemical Engineering, Waterloo Institute for Nanotechnology, University of Waterloo, 200 University Avenue West, Waterloo, ON N2L3G1, Canada.
Int J Mol Sci. 2022 Aug 12;23(16):9038. doi: 10.3390/ijms23169038.
Cell-penetrating peptides (CPPs) have been discovered to deliver chemical drugs, nucleic acids, and macromolecules to permeate cell membranes, creating a novel route for exogenous substances to enter cells. Up until now, various sequence structures and fundamental action mechanisms of CPPs have been established. Among them, arginine-rich peptides with unique cell penetration properties have attracted substantial scientific attention. Due to the positively charged essential amino acids of the arginine-rich peptides, they can interact with negatively charged drug molecules and cell membranes through non-covalent interaction, including electrostatic interactions. Significantly, the sequence design and the penetrating mechanisms are critical. In this brief synopsis, we summarize the transmembrane processes and mechanisms of arginine-rich peptides; and outline the relationship between the function of arginine-rich peptides and the number of arginine residues, arginine optical isomers, primary sequence, secondary and ternary structures, etc. Taking advantage of the penetration ability, biomedical applications of arginine-rich peptides have been refreshed, including drug/RNA delivery systems, biosensors, and blood-brain barrier (BBB) penetration. Understanding the membrane internalization mechanisms and design strategies of CPPs will expand their potential applications in clinical trials.
细胞穿透肽 (CPPs) 已被发现可将化学药物、核酸和大分子递送至细胞膜内,为外源性物质进入细胞开辟了新途径。到目前为止,已经建立了 CPPs 的各种序列结构和基本作用机制。其中,具有独特细胞穿透特性的富含精氨酸的肽引起了广泛的科学关注。由于富含精氨酸的肽具有带正电荷的必需氨基酸,它们可以通过非共价相互作用与带负电荷的药物分子和细胞膜相互作用,包括静电相互作用。重要的是,序列设计和穿透机制至关重要。在这篇简要综述中,我们总结了富含精氨酸的肽的跨膜过程和机制;并概述了富含精氨酸的肽的功能与精氨酸残基数、精氨酸光学异构体、一级序列、二级和三级结构等之间的关系。利用穿透能力,富含精氨酸的肽的生物医学应用得到了更新,包括药物/RNA 递送系统、生物传感器和血脑屏障 (BBB) 穿透。了解 CPP 的膜内化机制和设计策略将扩大它们在临床试验中的潜在应用。