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Nitric oxide conduction by the brain aquaporin AQP4.

机译:一氧化氮通过大脑水通道蛋白AQP4传导。

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Involvement of aquaporins in gas conduction across the membrane and the physiological significance of this process have attracted marked attention from both experimental and theoretical studies. Previous work demonstrated that AQP1 is permeable to both CO(2) and O(2). Here we employ various simulation techniques to examine the permeability of the brain aquaporin AQP4 to NO and O(2) and to describe energetics and pathways associated with these phenomena. The energy barrier to NO and O(2) permeation through AQP4 central pore is found to be only approximately 3 kcal mol(-1). The results suggest that the central pore of AQP4, similar to that of AQP1, can indeed conduct gas molecules. Interestingly, despite a longer and narrower central pore, AQP4 appears to provide an energetically more favorable permeation pathway for gas molecules than AQP1, mainly due to the different orientation of its charged residues near the pore entrance. Although the low barrier against gas permeation through AQP4 indicates that it can participate in gas conduction across the cellular membrane, physiological relevance of the phenomenon remains to be established experimentally, particularly since pure lipid bilayers appear to present a more favorable pathway for gas conduction across the membrane. With an energy well of -1.8 kcal mol(-1), the central pore of AQP4 may also act as a reservoir for NO molecules to accumulate in the membrane.
机译:水通道蛋白参与跨膜的气体传导以及该过程的生理学意义已引起实验和理论研究的极大关注。先前的工作表明AQP1对CO(2)和O(2)都是可渗透的。在这里,我们采用各种模拟技术来检查大脑水通道蛋白AQP4对NO和O(2)的渗透性,并描述与这些现象相关的能量学和途径。发现通过AQP4中心孔渗透到NO和O(2)的能量屏障仅为大约3 kcal mol(-1)。结果表明,与AQP1相似,AQP4的中心孔确实可以传导气体分子。有趣的是,尽管中心孔更长且更窄,但AQP4似乎比AQP1为气体分子提供了在能量上更有利的渗透途径,这主要是由于其带电残基在孔入口附近的取向不同。尽管通过AQP4阻止气体渗透的低障碍表明它可以参与跨细胞膜的气体传导,但是该现象的生理相关性尚待实验确定,特别是因为纯脂质双层似乎为跨膜的气体传导提供了更有利的途径。膜。具有-1.8 kcal mol(-1)的能阱,AQP4的中心孔还可以充当NO分子在膜中积累的储存器。

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