首页> 外文期刊>Biochimica et biophysica acta. Biomembranes >Dynamic and energetic mechanisms for the distinct permeation rate in AQP1 and AQP0.
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Dynamic and energetic mechanisms for the distinct permeation rate in AQP1 and AQP0.

机译:AQP1和AQP0中不同渗透率的动态和能量机制。

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摘要

Despite sharing overall sequence and structural similarities, water channel aquaporin 0 (AQP0) transports water more slowly than other aquaporins. Using molecular dynamics simulations of AQP0 and AQP1, we find that there is a sudden decrease in the distribution profile of water density along the pore of AQP0 in the region of residue Tyr23, which significantly disrupts the single file water chain by forming hydrogen bond with permeating water molecules. Comparisons of free-energy and interaction-energy profiles for water conduction between AQP0 and AQP1 indicate that this interruption of the water chain causes a huge energy barrier opposing water translocation through AQP0. We further show that a mutation of Tyr23 to phenylalanine leads to a 2- to 4-fold enhancement in water permeability of AQP0, from (0.5+/-0.2) x 10(-14) cm(3)s(-1) to (1.9+/-0.6) x 10(-14) cm(3)s(-1). Therefore, Tyr23 is a dominate factor leading to the low water permeability in AQP0.
机译:尽管共有总体序列和结构相似性,但水通道水通道蛋白0(AQP0)的水传输速度比其他水通道蛋白慢。使用AQP0和AQP1的分子动力学模拟,我们发现残留Tyr23区域中沿AQP0孔的水密度分布分布突然下降,这通过与渗透形成氢键显着破坏了单文件水链。水分子。 AQP0和AQP1之间水传导的自由能和相互作用能曲线的比较表明,水链的这种中断会导致巨大的能垒,阻碍水通过AQP0的转运。我们进一步表明,Tyr23向苯丙氨酸的突变导致AQP0的水渗透性提高了2到4倍,从(0.5 +/- 0.2)x 10(-14)cm(3)s(-1)变为(1.9 +/- 0.6)x 10(-14)cm(3)s(-1)。因此,Tyr23是导致AQP0中低水渗透性的主要因素。

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