LAMBE UMR 8587, Université de Cergy-Pontoise, CNRS, CEA, Université Paris-Seine, Cergy-Pontoise, France.
Center for Biophysics and Quantitative Biology, University of Illinois at Urbana-Champaign, Urbana, IL, USA.
Nat Biotechnol. 2020 Feb;38(2):176-181. doi: 10.1038/s41587-019-0345-2. Epub 2019 Dec 16.
Efforts to sequence single protein molecules in nanopores have been hampered by the lack of techniques with sufficient sensitivity to discern the subtle molecular differences among all twenty amino acids. Here we report ionic current detection of all twenty proteinogenic amino acids in an aerolysin nanopore with the help of a short polycationic carrier. Application of molecular dynamics simulations revealed that the aerolysin nanopore has a built-in single-molecule trap that fully confines a polycationic carrier-bound amino acid inside the sensing region of the aerolysin. This structural feature means that each amino acid spends sufficient time in the pore for sensitive measurement of the excluded volume of the amino acid. We show that distinct current blockades in wild-type aerolysin can be used to identify 13 of the 20 natural amino acids. Furthermore, we show that chemical modifications, instrumentation advances and nanopore engineering offer a route toward identification of the remaining seven amino acids. These findings may pave the way to nanopore protein sequencing.
人们一直试图在纳米孔中对单个蛋白质分子进行测序,但由于缺乏足够灵敏的技术,无法分辨所有 20 种氨基酸之间的细微分子差异。在这里,我们在 aerolysin 纳米孔中借助短的聚阳离子载体报告了对所有 20 种蛋白氨基酸的离子电流检测。分子动力学模拟的应用表明,aerolysin 纳米孔具有内置的单分子陷阱,可将带正电荷的载体结合的氨基酸完全限制在 aerolysin 的传感区域内。这种结构特征意味着每个氨基酸在孔内停留足够长的时间,以对氨基酸的排除体积进行灵敏测量。我们表明,野生型 aerolysin 中的独特电流阻断可用于鉴定 20 种天然氨基酸中的 13 种。此外,我们表明,化学修饰、仪器改进和纳米孔工程为鉴定其余 7 种氨基酸提供了一种途径。这些发现可能为纳米孔蛋白质测序铺平道路。