Computational Neuroscience and Neuromorphic Engineering Team, Intelligent Systems Research Centre, Ulster University, Northland Road, Derry, BT48 7JL, UK.
Faculty of Biology, Medicine and Health, University of Manchester, Manchester, UK.
Sci Rep. 2023 Feb 21;13(1):3050. doi: 10.1038/s41598-023-30189-8.
Astrocytes display a highly complex, spongiform morphology, with their fine terminal processes (leaflets) exercising dynamic degrees of synaptic coverage, from touching and surrounding the synapse to being retracted from the synaptic region. In this paper, a computational model is used to reveal the effect of the astrocyte-synapse spatial relationship on ionic homeostasis. Specifically, our model predicts that varying degrees of astrocyte leaflet coverage influences concentrations of K, Na and Ca, and results show that leaflet motility strongly influences Ca uptake, as well as glutamate and K to a lesser extent. Furthermore, this paper highlights that an astrocytic leaflet that is in proximity to the synaptic cleft loses the ability to form a Ca microdomain, whereas when the leaflet is remote from the synaptic cleft, a Ca microdomain can form. This may have implications for Ca-dependent leaflet motility.
星形胶质细胞呈现出高度复杂的海绵状形态,其精细的末端突起(小叶)在突触覆盖范围上具有动态程度,从接触和围绕突触到从突触区域缩回。在本文中,使用计算模型揭示了星形胶质细胞-突触空间关系对离子动态平衡的影响。具体来说,我们的模型预测,星形胶质细胞小叶覆盖程度的变化会影响 K、Na 和 Ca 的浓度,结果表明小叶的运动强烈影响 Ca 的摄取,以及谷氨酸和 K 的摄取,但程度较轻。此外,本文强调指出,与突触小间隙接近的星形胶质细胞小叶丧失了形成 Ca 微区的能力,而当小叶远离突触小间隙时,则可以形成 Ca 微区。这可能对 Ca 依赖性小叶运动有影响。