蛋白质测序,一次一个分子。

IF 10.4 1区 生物学 Q1 BIOPHYSICS
Brendan M Floyd, Edward M Marcotte
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引用次数: 13

摘要

尽管在过去的十年中取得了巨大的进步,但表征蛋白质的方法通常落后于具有极高灵敏度、动态范围和吞吐量的核酸的方法。然而,在核酸水平上直接表征蛋白质的能力将解决关键的生物学挑战,如更敏感的医学诊断、更深层次的蛋白质定量、大规模测量和发现替代蛋白质亚型和修饰,并将开辟单细胞蛋白质组学的新途径。为了应对这一需求,人们从高通量核酸测序中获得灵感,从根本上改进蛋白质测序技术,特别关注开发单分子蛋白质测序(SMPS)的实用方法。SMPS技术一般分为三类:降解测序(例如,质谱法或荧光测序)、传输测序(例如,纳米孔或量子隧道)和亲和测序(如基于DNA杂交的方法)。我们描述了这些不同的方法,从那些已经在实验中得到良好支持的到仅仅是推测的,在这个新兴的领域努力重新制定蛋白质组学。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Protein Sequencing, One Molecule at a Time.

Protein Sequencing, One Molecule at a Time.

Protein Sequencing, One Molecule at a Time.

Despite tremendous gains over the past decade, methods for characterizing proteins have generally lagged behind those for nucleic acids, which are characterized by extremely high sensitivity, dynamic range, and throughput. However, the ability to directly characterize proteins at nucleic acid levels would address critical biological challenges such as more sensitive medical diagnostics, deeper protein quantification, large-scale measurement, and discovery of alternate protein isoforms and modifications and would open new paths to single-cell proteomics. In response to this need, there has been a push to radically improve protein sequencing technologies by taking inspiration from high-throughput nucleic acid sequencing, with a particular focus on developing practical methods for single-molecule protein sequencing (SMPS). SMPS technologies fall generally into three categories: sequencing by degradation (e.g., mass spectrometry or fluorosequencing), sequencing by transit (e.g., nanopores or quantum tunneling), and sequencing by affinity (as in DNA hybridization-based approaches). We describe these diverse approaches, which range from those that are already experimentally well-supported to the merely speculative, in this nascent field striving to reformulate proteomics.

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来源期刊
Annual Review of Biophysics
Annual Review of Biophysics 生物-生物物理
CiteScore
21.00
自引率
0.00%
发文量
25
期刊介绍: The Annual Review of Biophysics, in publication since 1972, covers significant developments in the field of biophysics, including macromolecular structure, function and dynamics, theoretical and computational biophysics, molecular biophysics of the cell, physical systems biology, membrane biophysics, biotechnology, nanotechnology, and emerging techniques.
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