Permeability of a Fluid Lipid Bilayer to Short-Chain Alcohols from First Principles

被引:35
作者
Comer, Jeffrey [1 ,2 ]
Schulten, Klaus [3 ,4 ]
Chipot, Christophe [3 ,4 ,5 ,6 ]
机构
[1] Kansas State Univ, Inst Computat Comparat Med, Manhattan, KS 66506 USA
[2] Kansas State Univ, Dept Anat & Physiol, Nanotechnol Innovat Ctr Kansas State, Manhattan, KS 66506 USA
[3] Univ Illinois, Beckman Inst Adv Sci & Technol, Theoret & Computat Biophys Grp, 405 North Mathews Ave, Urbana, IL 61801 USA
[4] Univ Illinois, Dept Phys, 1110 West Green St, Urbana, IL 61801 USA
[5] Univ Lorraine, CNRS, Lab Int Associe, BP 70239, F-54506 Vandoeuvre Les Nancy, France
[6] Univ Lorraine, Univ Illinois Urbana Champaign, Unite Mixte Rech 7565, BP 70239, F-54506 Vandoeuvre Les Nancy, France
基金
美国国家科学基金会;
关键词
MOLECULAR-DYNAMICS SIMULATIONS; FREE-ENERGY CALCULATIONS; DIFFUSION-COEFFICIENTS; MEMBRANE PERMEATION; WATER PERMEABILITY; DRUG TRANSPORT; AVERAGE FORCE; IN-SILICO; MODELS; SUBDIFFUSION;
D O I
10.1021/acs.jctc.7b00264
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Computational prediction of membrane permeability to small molecules requires accurate description of both the thermodynamics and kinetics underlying trans location across the lipid bilayer. In this contribution, well converged, microsecond-long free-energy calculations are combined with a recently developed subdiffusive kinetics framework to describe the membrane permeation of a homologous series of short-tail alcohols, from methanol to 1-biltanol, with unprecedented fidelity to the underlying molecular models. While the free-energy profiles exhibit bathers for passage through the center of the bilayer in all cases, the height of these barriers decreases with the length of the aliphatic chain of the alcohol, in quantitative agreement with experimentally determined differential solvation free energies in water and oil. A unique aspect of the subdiffusive model employed herein, which was developed in a previous article, is the determination of a position-dependent fractional order which quantifies the degree to which the motion of the alcohol deviates from classical diffusion along the thickness of the membrane. In the aqueous medium far from the bilayer, this quantity approaches 1.0, the asymptotic limit for purely classical diffusion, whereas it dips below 0.75 near the center of the membrane irrespective of the permeant. Remarkably, the fractional diffusivity near the center of membrane, where its influence on the permeability is the greatest, is similar among the four permeants despite the large difference in molecular weight and lipophilicity between methanol and 1-butanol. The relative permeabilities, which are estimated from the free-energy and fractional diffusivity profiles, are therefore determined predominantly by differences in the former rather than the latter. The predicted relative permeabilities are highly correlated with existing experimental results, albeit they do not agree quantitatively with them. On the other hand, quite unexpectedly, the reported experimental values for the short-tail alcohols are nearly three orders of magnitude lower than the available experimental measurement for water. Plausible explanations for this apparent disagreement between theory and experiment are considered in detail.
引用
收藏
页码:2523 / 2532
页数:10
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