Kong Y, Ma J
Graduate Program of Structural and Computational Biology and Molecular Biophysics, , Baylor College of Medicine, One Baylor Plaza, BCM-125, Houston, TX 77030, USA.
Proc Natl Acad Sci U S A. 2001 Dec 4;98(25):14345-9. doi: 10.1073/pnas.251507998. Epub 2001 Nov 20.
Molecular-dynamics simulations were performed on the structures of the water channel aquaporin-1. The results provide an atomistic description of the interactions involved in the water permeation. Two major curvilinear pathways were identified. The simulations confirmed that the water selectivity is due primarily to the size-exclusion effect; i.e., maximally, one water molecule is allowed to pass through the narrow constriction in the aqueous pathway. Most importantly, in contrast to previous proposals, the hydrogen-bonding interactions of water molecules with the polar side chains of Asn-76 and Asn-192 on the strictly conserved Asn-Pro-Ala sequence motifs were found to be essential for maintaining the connectivity of water flow in the narrow constriction region. When Asn-76 and Asn-192 were replaced with near-isosteric hydrophobic residues in the simulation, the aqueous pathways were broken completely. Additionally, the size of the narrow constriction fluctuates significantly during the simulation, which frequently breaks the flow of water and, thus, breaks the single-file water network necessary for proton translocation. Moreover, mutations based on the simulation also have been suggested for further experimental investigation of the water-permeation mechanism of aquaporin-1.
对水通道水通道蛋白-1的结构进行了分子动力学模拟。结果提供了水渗透过程中所涉及相互作用的原子水平描述。确定了两条主要的曲线通道。模拟结果证实,水的选择性主要归因于尺寸排阻效应;也就是说,在水通道的狭窄收缩处最多允许一个水分子通过。最重要的是,与之前的观点相反,发现水分子与严格保守的天冬酰胺-脯氨酸-丙氨酸序列基序上的天冬酰胺-76和天冬酰胺-192的极性侧链之间的氢键相互作用对于维持狭窄收缩区域内水流的连通性至关重要。在模拟中,当天冬酰胺-76和天冬酰胺-192被近等排的疏水残基取代时,水通道完全断裂。此外,在模拟过程中狭窄收缩处的尺寸波动显著,这经常会中断水流,从而破坏质子转运所需的单列水网络。此外,还基于模拟提出了一些突变,以便对水通道蛋白-1的水渗透机制进行进一步的实验研究。