Leybaert Luc, Cabooter Liesbet, Braet Katleen
Department of Physiology and Pathophysiology, Ghent University, B-9000 Ghent, Belgium.
Acta Neurol Belg. 2004 Jun;104(2):51-6.
The brain is composed of neurons that communicate electrical signals over neurites and chemical signals across synapses, and non-neuronal cells like glial and vascular cells that communicate calcium signals among each other Calcium ions have an important signaling function in the cytoplasm that depends on their amplitude, time course of change and subcellular localisation. Work over the last decade has added an additional dimension to this rich repertoire by including the possibility that calcium signals can be communicated between cells. In astrocytes and endothelial cells, connexins appear to be at the crossroad of calcium signal communication pathways, because they are the building blocks of gap junction channels that functionally connect cells, and because they can arrange as hemichannels that act as a conduit for cellular ATP release, thus initiating paracrine purinergic signaling. The two pathways appear to be operational in astrocytes and endothelial cells and we review in this paper possible functions of astrocyte-to-blood vessel calcium signaling at the level of arterioles where blood flow is controlled, at the level of capillaries where the blood-brain barrier is located and at the level of blood immune cells.
大脑由通过神经突传递电信号并通过突触传递化学信号的神经元,以及相互传递钙信号的神经胶质细胞和血管细胞等非神经元细胞组成。钙离子在细胞质中具有重要的信号传导功能,这取决于它们的幅度、变化的时间进程和亚细胞定位。过去十年的研究为这一丰富的信号传导机制增添了新的维度,即钙信号可以在细胞间传递。在星形胶质细胞和内皮细胞中,连接蛋白似乎处于钙信号传导途径的交叉点,因为它们是功能性连接细胞的间隙连接通道的组成部分,并且它们可以排列成半通道,作为细胞ATP释放的通道,从而启动旁分泌嘌呤能信号传导。这两条途径似乎在星形胶质细胞和内皮细胞中起作用,我们在本文中综述了星形胶质细胞到血管的钙信号传导在小动脉水平(此处血流受到控制)、毛细血管水平(血脑屏障所在位置)以及血液免疫细胞水平可能具有的功能。