Department of Applied Mathematics, Institute of Information Technology, Mathematics and Mechanics, Lobachevsky University, 23, Gagarin Ave., Nizhny Novgorod, 603022, Russia.
Department of Supercomputer Computation, Institute of Information Technology, Mathematics and Mechanics, Lobachevsky University, 23, Gagarin Ave., Nizhny Novgorod, 603022, Russia.
Sci Rep. 2022 Apr 28;12(1):6970. doi: 10.1038/s41598-022-10649-3.
Recent in vitro and in vivo experiments demonstrate that astrocytes participate in the maintenance of cortical gamma oscillations and recognition memory. However, the mathematical understanding of the underlying dynamical mechanisms remains largely incomplete. Here we investigate how the interplay of slow modulatory astrocytic signaling with fast synaptic transmission controls coherent oscillations in the network of hippocampal interneurons that receive inputs from pyramidal cells. We show that the astrocytic regulation of signal transmission between neurons improves the firing synchrony and extends the region of coherent oscillations in the biologically relevant values of synaptic conductance. Astrocyte-mediated potentiation of inhibitory synaptic transmission markedly enhances the coherence of network oscillations over a broad range of model parameters. Astrocytic regulation of excitatory synaptic input improves the robustness of interneuron network gamma oscillations induced by physiologically relevant excitatory model drive. These findings suggest a mechanism, by which the astrocytes become involved in cognitive function and information processing through modulating fast neural network dynamics.
最近的体外和体内实验表明,星形胶质细胞参与了大脑皮层 γ 振荡和识别记忆的维持。然而,对其潜在动力学机制的数学理解在很大程度上仍然不完整。在这里,我们研究了慢调节星形胶质细胞信号与快速突触传递之间的相互作用如何控制从锥体细胞接收输入的海马中间神经元网络中的相干振荡。我们表明,星形胶质细胞对神经元之间信号传递的调节改善了放电同步,并在生物相关的突触电导值范围内扩展了相干振荡的区域。星形胶质细胞介导的抑制性突触传递的增强显著增强了网络振荡的相干性,其模型参数范围很广。星形胶质细胞对兴奋性突触输入的调节改善了由生理相关的兴奋性模型驱动引起的中间神经元网络 γ 振荡的鲁棒性。这些发现表明了一种机制,通过该机制,星形胶质细胞通过调节快速神经网络动力学参与认知功能和信息处理。