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构象效应对葡萄糖通过环状肽纳米管运输的影响:分子动力学模拟研究。

Conformational Effects in the Transport of Glucose through a Cyclic Peptide Nanotube: A Molecular Dynamics Simulation Study.

机构信息

Department of Chemistry and Institute for Molecular Science and Fusion Technology , Kangwon National University , Chuncheon , Gangwon-do 24341 , Republic of Korea.

Department of Chemistry , Northwestern University , 2145 Sheridan Road , Evanston , Illinois 60208 , United States.

出版信息

J Phys Chem B. 2018 Aug 30;122(34):8174-8184. doi: 10.1021/acs.jpcb.8b05591. Epub 2018 Aug 16.

Abstract

The transport behavior of glucose through a cyclic peptide nanotube (CPN), composed of 8 × cyclo[-(Trp-d-Leu)-Gln-d-Leu-] rings embedded in DMPC lipid bilayers was examined using all-atom molecular dynamics (AAMD) simulations. Two conformational isomers of β-d-glucose, equatorial (C) and axial (C) chair conformers, were used to examine conformational effects on the hydrogen bond network, energetics, and diffusivity of glucose transport through the CPN. Calculations of the number of hydrogen bonds of the two glucose conformers with water molecules and with the CPN illustrate that the total number of hydrogen bonds of the conformers decreases inside the channel compared to bulk water due to the confinement characteristics of the interior of the CPNs although new hydrogen bonds between the hydroxyl and hydroxymethyl hydrogens of glucose and the carbonyl oxygens in the CPN backbone are formed. Despite the decrease of the number of hydrogen bonds inside the CPN, intramolecular hydrogen bonds of C are maintained during permeation of C through the CPN. The retention of intramolecular hydrogen bonds and the spherical shape of C give rise to considerably weaker orientational preferences and higher diffusion coefficients for C than those of C inside and outside the CPN. Due to larger dipole moments induced by the alignment of hydroxyl and hydroxymethyl groups, C has more favorable interactions with the CPN backbone at the channel entrances and inside the channel than C. In the middle of the CPN channel, entropic gains originating from higher orientational and translational degrees of freedom of C than those of C also contribute to lower free energy wells for C inside the CPN. This work reveals that the conformational variation and intramolecular hydrogen bond formation of β-d-glucose can have important effects on the energetics and dynamics of glucose transport through CPNs, providing insight into the translocation mechanism of d-glucose into the cell through glucose transporters (GLUTs) and the dynamics of glucose confined in silica nanochannels. It is also demonstrated that CPNs can indeed facilitate the permeation of small hydrophilic molecules such as glucose and can be utilized as a novel carrier system for hydrophilic drug compounds into the cell.

摘要

使用全原子分子动力学(AAMD)模拟研究了由嵌入 DMPC 双层脂质中的 8×环[-(Trp-d-Leu)-Gln-d-Leu-]环组成的环肽纳米管(CPN)中葡萄糖的传输行为。使用两种β-d-葡萄糖构象异构体,赤道(C)和轴向(C)椅式构象异构体,研究了构象效应对葡萄糖通过 CPN 的氢键网络、能量和扩散率的影响。计算了两种葡萄糖构象与水分子和 CPN 的氢键数量,结果表明,由于 CPN 内部的限制特征,与本体水相比,通道内的构象氢键总数减少,尽管葡萄糖的羟基和羟甲基氢与 CPN 骨架的羰基氧之间形成了新的氢键。尽管 CPN 内的氢键数量减少,但 C 穿过 CPN 时仍保持分子内氢键。C 保留分子内氢键和球形形状导致 C 的取向偏好和扩散系数明显低于 CPN 内外的 C。由于羟基和羟甲基基团的排列诱导了更大的偶极矩,C 与 CPN 骨架在通道入口和通道内的相互作用比 C 更有利。在 CPN 通道的中间,C 的取向和平移自由度高于 C,导致 C 在 CPN 内的自由能势垒降低,从而产生更高的熵增益。这项工作表明,β-d-葡萄糖的构象变化和分子内氢键的形成对葡萄糖通过 CPN 的能量学和动力学有重要影响,为了解葡萄糖通过葡萄糖转运体(GLUTs)进入细胞的转运机制以及葡萄糖在二氧化硅纳米通道中的动力学提供了新的见解。还证明 CPN 确实可以促进小分子亲水性分子(如葡萄糖)的渗透,并可作为亲水性药物化合物进入细胞的新型载体系统。

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