手性(物理)
超分子化学
两亲性
化学
三肽
肽
自组装
对映体
超分子手性
立体化学
超分子组装
生物物理学
组合化学
纳米技术
材料科学
生物化学
有机化学
共聚物
分子
生物
聚合物
物理
量子力学
手征对称破缺
Nambu–Jona Lasinio模型
夸克
作者
M. T. Jeena,Keunsoo Jeong,Eun Min Go,Yuri Cho,Seokyung Lee,Seongeon Jin,Suk‐Won Hwang,Joo Hee Jang,Chi Soo Kang,Woo-Young Bang,Eunji Lee,Sang Kyu Kwak,Sehoon Kim,Ja‐Hyoung Ryu
出处
期刊:ACS Nano
[American Chemical Society]
日期:2019-09-11
卷期号:13 (10): 11022-11033
被引量:82
标识
DOI:10.1021/acsnano.9b02522
摘要
Self-assembly of peptides containing both l- and d-isomers often results in nanostructures with enhanced properties compared to their enantiomeric analogues, such as faster kinetics of formation, higher mechanical strength, and enzymatic stability. However, occurrence and consequences of the heterochiral assembly in the cellular microenvironment are unknown. In this study, we monitored heterochiral assembly of amphiphilic peptides inside the cell, specifically mitochondria of cancer cells, resulting in nanostructures with refined morphological and biological properties owing to the superior interaction between the backbones of opposite chirality. We have designed a mitochondria penetrating tripeptide containing a diphenyl alanine building unit, named as Mito-FF due to their mitochondria targeting ability. The short peptide amphiphile, Mito-FF co-assembled with its mirror pair, Mito-ff, induced superfibrils of around 100 nm in diameter and 0.5–1 μm in length, while enantiomers formed only narrow fibers of 10 nm in diameter. The co-administration of Mito-FF and Mito-ff in the cell induced drastic mitochondrial disruption both in vitro and in vivo. The experimental and theoretical analyses revealed that pyrene capping played a major role in inducing superfibril morphology upon the co-assembly of racemic peptides. This work shows the impact of chirality control over the peptide self-assembly inside the biological system, thus showing a potent strategy for fabricating promising peptide biomaterials by considering chirality as a design modality.
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