Entrainment of Astrocytic and Neuronal Ca2+ Population Dynamics During Information Processing of Working Memory in Mice
Zhu Lin1 • Feng You1 • Ting Li1 • Yijia Feng1 • Xinyue Zhao1 • Jingjing Yang1 • Zhimo Yao1 • Ying Gao1 • Jiang-Fan Chen
1 The Molecular Neuropharmacology Laboratory and the EyeBrain Research Center, State Key Laboratory of Ophthalmology, Optometry and Visual Science, School of Optometry and Ophthalmology and Eye Hospital, Wenzhou Medical University, Wenzhou 325035, China
Abstract
Astrocytes are increasingly recognized to play an active role in learning and memory, but whether neural inputs can trigger event-specific astrocytic Ca2? dynamics in real time to participate in working memory remains unclear due to the difficulties in directly monitoring astrocytic Ca2? dynamics in animals performing tasks. Here, using fiber photometry, we showed that population astrocytic Ca2? dynamics in the hippocampus were gated by sensory inputs (centered at the turning point of the T-maze) and modified by the reward delivery during the encoding and retrieval phases. Notably, there was a strong inter-locked and antagonistic relationship between the astrocytic and neuronal Ca2? dynamics with a 3-s phase difference. Furthermore, there was a robust synchronization of astrocytic Ca2? at the population level among the hippocampus, medial prefrontal cortex, and striatum. The inter-locked, bidirectional communication between astrocytes and neurons at the population level may contribute to the modulation of information processing in working memory.
Keywords
Working memory; Ca2+ dynamics; Astrocyte; Neuron; Fiber photometry; Hippocampus