Specialized astrocytes mediate glutamatergic gliotransmission in the CNS.

Ilaria Vitali, Andrea Volterra, Ludovic Telley, Nicola Mercuri, Manuel Mameli, Kenneth Harris, William Wisden, Tara Canonica, Mauro Congiu, Anurag Ranjak, Roberta de Ceglia, Iaroslav Savtchouk, Maria Amalia Di Castro, Erika Bindocci, Emanuele Claudio Latagliata, Giovanni Carriero, Barbara Lykke Lind, David Gregory Litvin, Ada Ledonne

Journal: Nature 2023;622(7981):120-129

PMID: 37674083

Abstract

Multimodal astrocyte-neuron communications govern brain circuitry assembly and function. For example, through rapid glutamate release, astrocytes can control excitability, plasticity and synchronous activity of synaptic networks, while also contributing to their dysregulation in neuropsychiatric conditions. For astrocytes to communicate through fast focal glutamate release, they should possess an apparatus for Ca-dependent exocytosis similar to neurons. However, the existence of this mechanism has been questioned owing to inconsistent data and a lack of direct supporting evidence. Here we revisited the astrocyte glutamate exocytosis hypothesis by considering the emerging molecular heterogeneity of astrocytes and using molecular, bioinformatic and imaging approaches, together with cell-specific genetic tools that interfere with glutamate exocytosis in vivo. By analysing existing single-cell RNA-sequencing databases and our patch-seq data, we identified nine molecularly distinct clusters of hippocampal astrocytes, among which we found a notable subpopulation that selectively expressed synaptic-like glutamate-release machinery and localized to discrete hippocampal sites. Using GluSnFR-based glutamate imaging in situ and in vivo, we identified a corresponding astrocyte subgroup that responds reliably to astrocyte-selective stimulations with subsecond glutamate release events at spatially precise hotspots, which were suppressed by astrocyte-targeted deletion of vesicular glutamate transporter 1 (VGLUT1). Furthermore, deletion of this transporter or its isoform VGLUT2 revealed specific contributions of glutamatergic astrocytes in cortico-hippocampal and nigrostriatal circuits during normal behaviour and pathological processes. By uncovering this atypical subpopulation of specialized astrocytes in the adult brain, we provide insights into the complex roles of astrocytes in central nervous system (CNS) physiology and diseases, and identify a potential therapeutic target.

© 2023. The Author(s).

Address: Department of Fundamental Neuroscience, University of Lausanne, Lausanne, Switzerland.; Department of Experimental Neuroscience, IRCCS Santa Lucia Foundation, Rome, Italy.; Wyss Center for Bio and Neuro Engineering, Campus Biotech, Geneva, Switzerland.; Department of Neuroscience, Faculty of Health and Medical Sciences, University of Copenhagen, Copenhagen, Denmark.; Department of Physiology and Pharmacology, Sapienza University, Rome, Italy.; Department of Biomedical Sciences, Marquette University, Milwaukee, WI, USA.; Department of Life Sciences and UK Dementia Research Institute, Imperial College London, London, UK.; UCL Queen Square Institute of Neurology, University College London, London, UK.; Department of Systems Medicine, University of Rome "Tor Vergata", Rome, Italy.; Department of Fundamental Neuroscience, University of Lausanne, Lausanne, Switzerland. [email protected].; Department of Fundamental Neuroscience, University of Lausanne, Lausanne, Switzerland. [email protected].; Wyss Center for Bio and Neuro Engineering, Campus Biotech, Geneva, Switzerland. [email protected].
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