Calcium-dependent trapping of mitochondria near plasma membrane in stimulated astrocytes.

Brain cell biology Pub Date : 2006-02-01 Epub Date: 2007-03-10 DOI:10.1007/s11068-006-9000-1
Julia Kolikova, Ramil Afzalov, Asiya Giniatullina, Alexander Surin, Rashid Giniatullin, Leonard Khiroug
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引用次数: 24

Abstract

Growing evidence suggests that astrocytes are the active partners of neurons in many brain functions. Astrocytic mitochondria are highly motile organelles which regulate the temporal and spatial patterns of Ca( 2+ ) dynamics, in addition to being a major source of ATP and reactive oxygen species. Previous studies have shown that mitochondria translocate to endoplasmic reticulum during Ca( 2+ ) release from internal stores, but whether a similar spatial interaction between mitochondria and plasma membrane occurs is not known. Using total internal reflection fluorescence (TIRF) microscopy we show that a fraction of mitochondria became trapped near the plasma membrane of cultured hippocampal astrocytes during exposure to the transmitters glutamate or ATP, resulting in net translocation of the mitochondria to the plasma membrane. This translocation was dependent on the intracellular Ca( 2+ ) rise because it was blocked by pre-incubation with BAPTA AM and mimicked by application of the Ca( 2+ ) ionophore ionomycin. Transmembrane Ca( 2+ ) influx induced by raising external Ca( 2+ ) also caused mitochondrial trapping, which occurred more rapidly than that produced by glutamate or ATP. In astrocytes treated with the microtubule-disrupting agent nocodazole, intracellular Ca( 2+ ) rises failed to induce trapping of mitochondria near plasma membrane, suggesting a role for microtubules in this phenomenon. Our data reveal the Ca( 2+ )-dependent trapping of mitochondria near the plasma membrane as a novel form of mitochondrial regulation, which is likely to control the perimembrane Ca( 2+ ) dynamics and regulate signaling by mitochondria-derived reactive oxygen species.

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受刺激星形胶质细胞质膜附近线粒体的钙依赖性捕获。
越来越多的证据表明,星形胶质细胞在许多脑功能中是神经元的活跃伙伴。星形细胞线粒体是高度运动的细胞器,除了是ATP和活性氧的主要来源外,还调节Ca(2+)动力学的时空模式。先前的研究表明,在钙(2+)从内部储存释放的过程中,线粒体转移到内质网,但线粒体和质膜之间是否发生类似的空间相互作用尚不清楚。利用全内反射荧光(TIRF)显微镜,我们发现在暴露于谷氨酸或ATP递质时,一部分线粒体被困在培养的海马星形胶质细胞的质膜附近,导致线粒体向质膜的净移位。这种易位依赖于细胞内Ca(2+)的上升,因为它被BAPTA AM预孵育阻断,并被Ca(2+)离子载体离子霉素模拟。外部Ca(2+)升高引起的跨膜Ca(2+)内流也引起线粒体诱捕,其发生速度比谷氨酸或ATP更快。在用微管破坏剂nocodazole处理的星形胶质细胞中,细胞内Ca(2+)升高未能诱导线粒体在质膜附近被捕获,这表明微管在这一现象中起作用。我们的数据显示,质膜附近线粒体的Ca(2+)依赖性捕获是线粒体调控的一种新形式,它可能控制膜周Ca(2+)动力学并调节线粒体衍生的活性氧的信号传导。
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