Computational Brain Lab, Department of Computer Science, Rutgers University, New Brunswick, New Jersey, USA.
J Comput Neurosci. 2022 Nov;50(4):505-518. doi: 10.1007/s10827-022-00828-6. Epub 2022 Jul 15.
Place cells develop spatially-tuned receptive fields during the early stages of novel environment exploration. The generative mechanism underlying these spatially-selective responses remains largely elusive, but has been associated with theta rhythmicity. An important factor implicating the transformation of silent cells to place cells is a spatially-uniform depolarization that is mediated by a persistent sodium current. This neuronal current is modulated by extracellular calcium concentration, which, in turn, is actively controlled by astrocytes. However, there is no established relationship between the neuronal depolarization and astrocytic activity. To consider this link, we designed a bioplausible computational model of a neuronal-astrocytic network, where astrocytes induced the transient emergence of place fields in silent cells, and accelerated the plasticity-induced consolidation of place cells. Interestingly, theta oscillations emerged naturally at the network level, resulting from the astrocytic modulation of subcellular neuronal properties. Our results suggest that astrocytes participate in spatial mapping and exploration, and further highlight the computational roles of these cells in the brain.
在探索新环境的早期阶段,位置细胞会发展出空间调谐的感受野。这些空间选择性反应的产生机制在很大程度上仍未被揭示,但与θ节律有关。一个重要的因素是,沉默细胞向位置细胞的转变是由持续的钠离子电流介导的空间均匀去极化。这种神经元电流受到细胞外钙浓度的调节,而钙浓度反过来又被星形胶质细胞主动控制。然而,神经元去极化和星形胶质细胞活动之间没有建立明确的关系。为了考虑这种联系,我们设计了一个神经元-星形胶质细胞网络的生物合理计算模型,其中星形胶质细胞诱导沉默细胞中位置场的瞬时出现,并加速了位置细胞的可塑性诱导巩固。有趣的是,θ振荡自然出现在网络层面,这是星形胶质细胞对亚细胞神经元特性的调节所致。我们的结果表明,星形胶质细胞参与空间映射和探索,并进一步强调了这些细胞在大脑中的计算作用。