Laboratory of Molecular Biophysics, Department of Physics, Universitat Jaume I, Castellón 12071, Spain.
Biomacromolecules. 2021 Feb 8;22(2):410-418. doi: 10.1021/acs.biomac.0c01286. Epub 2020 Dec 18.
We study the interaction of neutral polyethylene glycol (PEG) molecules of different molecular weights (MWs) with the charged residues of the α-hemolysin channel secreted by . Previously reported experiments of PEG equilibrium partitioning into this nanopore show that the charge state of the channel changes the ability of PEG entry in an MW-dependent manner. We explain such an effect by parameter-free calculations of the PEG self-energy from the channel 3D atomic structure that include repulsive dielectrophoretic and hydrostatic forces on the polymer. We found that the pH-induced shift in the measured free energy of partitioning ΔΔ from single-channel conductance measurements agrees with calculated energy changes ΔΔ. Our results show that the PEG-sizing technique may need corrections in the case of charged biological pores.
我们研究了不同分子量(MW)的中性聚乙二醇(PEG)分子与 分泌的α-溶血素通道中带电荷残基的相互作用。先前报道的 PEG 平衡分配到该纳米孔的实验表明,通道的荷电状态以 MW 依赖的方式改变 PEG 进入的能力。我们通过从通道 3D 原子结构中进行无参数计算 PEG 自能来解释这种效应,其中包括聚合物上的排斥介电泳和静电力。我们发现,从单通道电导测量中测量的分配自由能变化 ΔΔ与计算的能量变化 ΔΔ 相吻合。我们的结果表明,在带电荷的生物孔的情况下,PEG 尺寸测定技术可能需要校正。