Stephen Terri-Leigh, Gupta-Agarwal Swati, Kittler Josef T
*University College London, Gower Street, London WC1E 6BT, U.K.
Biochem Soc Trans. 2014 Oct;42(5):1302-10. doi: 10.1042/BST20140195.
Astrocytes exhibit cellular excitability through variations in their intracellular calcium (Ca²⁺) levels in response to synaptic activity. Astrocyte Ca²⁺ elevations can trigger the release of neuroactive substances that can modulate synaptic transmission and plasticity, hence promoting bidirectional communication with neurons. Intracellular Ca²⁺ dynamics can be regulated by several proteins located in the plasma membrane, within the cytosol and by intracellular organelles such as mitochondria. Spatial dynamics and strategic positioning of mitochondria are important for matching local energy provision and Ca²⁺ buffering requirements to the demands of neuronal signalling. Although relatively unresolved in astrocytes, further understanding the role of mitochondria in astrocytes may reveal more about the complex bidirectional relationship between astrocytes and neurons in health and disease. In the present review, we discuss some recent insights regarding mitochondrial function, transport and turnover in astrocytes and highlight some important questions that remain to be answered.
星形胶质细胞通过响应突触活动而使其细胞内钙(Ca²⁺)水平发生变化,从而表现出细胞兴奋性。星形胶质细胞的Ca²⁺升高可触发神经活性物质的释放,这些物质可调节突触传递和可塑性,从而促进与神经元的双向通信。细胞内Ca²⁺动态可由位于质膜、胞质溶胶内的几种蛋白质以及线粒体等细胞内细胞器调节。线粒体的空间动态和战略定位对于将局部能量供应和Ca²⁺缓冲需求与神经元信号传导需求相匹配很重要。尽管在星形胶质细胞中相对未得到解决,但进一步了解线粒体在星形胶质细胞中的作用可能会揭示更多关于健康和疾病状态下星形胶质细胞与神经元之间复杂双向关系的信息。在本综述中,我们讨论了关于星形胶质细胞中线粒体功能、运输和周转的一些最新见解,并强调了一些有待回答的重要问题。