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The molecular basis of water transport in the brain.

机译:大脑中水运输的分子基础。

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Brain function is inextricably coupled to water homeostasis. The fact that most of the volume between neurons is occupied by glial cells, leaving only a narrow extracellular space, represents an important challenge, as even small extracellular volume changes will affect ion concentrations and therefore neuronal excitability. Further, the ionic transmembrane shifts that are required to maintain ion homeostasis during neuronal activity must be accompanied by water. It follows that the mechanisms for water transport across plasma membranes must have a central part in brain physiology. These mechanisms are also likely to be of pathophysiological importance in brain oedema, which represents a net accumulation of water in brain tissue. Recent studies have shed light on the molecular basis for brain water transport and have identified a class of specialized water channels in the brain that might be crucial to the physiological and pathophysiological handling of water.
机译:脑功能与水的动态平衡密不可分。神经元之间的大部分体积被神经胶质细胞占据,仅留下狭窄的细胞外空间,这一事实代表了一个重要的挑战,因为即使细胞外体积的微小变化也会影响离子浓度,从而影响神经元的兴奋性。此外,在神经元活动期间维持离子稳态所需的离子跨膜迁移必须伴有水。因此,水跨质膜运输的机制必须在大脑生理学中具有中心作用。这些机制在脑水肿中也可能具有重要的病理生理意义,后者代表脑组织中水的净积累。最近的研究为脑部水的运输提供了分子基础,并确定了大脑中一类专门的水通道,这可能对水的生理和病理生理处理至关重要。

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