化学
纳米孔
乙酰化
肽
赖氨酸
线程(蛋白质序列)
组蛋白
计算生物学
分子动力学
基因亚型
分子印迹
翻译后修饰
蛋白质组学
纳米技术
生物物理学
组合化学
生物化学
选择性
蛋白质结构
氨基酸
计算化学
基因
酶
催化作用
材料科学
生物
作者
Tobias Ensslen,Kumar Sarthak,Aleksei Aksimentiev,Jan C. Behrends
摘要
The chemical nature and precise position of posttranslational modifications (PTMs) in proteins or peptides are crucial for various severe diseases, such as cancer. State-of-the-art PTM diagnosis is based on elaborate and costly mass-spectrometry or immunoassay-based approaches, which are limited in selectivity and specificity. Here, we demonstrate the use of a protein nanopore to differentiate peptides─derived from human histone H4 protein─of identical mass according to the positions of acetylated and methylated lysine residues. Unlike sequencing by stepwise threading, our method detects PTMs and their positions by sensing the shape of a fully entrapped peptide, thus eliminating the need for controlled translocation. Molecular dynamics simulations show that the sensitivity to molecular shape derives from a highly nonuniform electric field along the pore. This molecular shape-sensing principle offers a path to versatile, label-free, and high-throughput characterizations of protein isoforms.
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