纳米孔
化学
连接器
生物正交化学
纳米孔测序
肽
天然化学连接
DNA
线程(蛋白质序列)
组合化学
序列(生物学)
纳米技术
肽序列
生物物理学
DNA测序
氨基酸
计算生物学
生物化学
染色体易位
分子生物物理学
结扎
化学结扎
蛋白质测序
作者
Justas Ritmejeris,X. Chen,Bauke H. Albada,Cees Dekker
摘要
Nanopore sequencing of peptides holds great promise for single-molecule proteomics, but robust conjugation strategies to adapt native peptides for motor-enzyme-driven translocation have yet to be developed. Here, we establish terminally directed DNA-peptide conjugation chemistry strategies that expand the applicability of nanopore sequencing beyond synthetic model systems to natural peptides. At the N terminus, omniligase catalyzes rapid and peptide ligation of a DNA handle under mild conditions. At the C terminus, photoredox decarboxylative ligation introduces a bioorthogonal linker that enables CuAAC-mediated DNA attachment that ensures proper stretching and translocation of short peptides through the nanopore. Our study reveals that long peptides can be sequenced with single-end conjugation, while short or neutral peptides require threading tails. Positively charged peptides cannot be translocated under the same electric field but can be sequenced after charge neutralization. The data demonstrate controlled nanopore readouts of peptides that differ widely in length, charge, and sequence. This framework establishes a versatile chemical foundation for adapting natural peptides to nanopore sequencing, advancing single-molecule proteomic analysis.
科研通智能强力驱动
Strongly Powered by AbleSci AI