Agathe Launay, Kevin Carvalho, Athénais Genin, Thibaut Gauvrit, Paola Nobili, Victoria Gomez-Murcia, Emma Augustin, Anaëlle Burgard, Johanne Gambi, Déborah Fourmy, Bryan Thiroux, Didier Vieau, Alexis-Pierre Bemelmans, Stephanie Le Gras, Luc Buée, Miranda E. Orr, Etienne Audinat, Anne-Laurence Boutillier, Gilles Bonvento, Karine Cambon, Emilie Faivre, David Blum
{"title":"星形胶质细胞中腺苷A2A受体的上调足以引发海马多细胞功能障碍和记忆缺陷","authors":"Agathe Launay, Kevin Carvalho, Athénais Genin, Thibaut Gauvrit, Paola Nobili, Victoria Gomez-Murcia, Emma Augustin, Anaëlle Burgard, Johanne Gambi, Déborah Fourmy, Bryan Thiroux, Didier Vieau, Alexis-Pierre Bemelmans, Stephanie Le Gras, Luc Buée, Miranda E. Orr, Etienne Audinat, Anne-Laurence Boutillier, Gilles Bonvento, Karine Cambon, Emilie Faivre, David Blum","doi":"10.1038/s41380-025-03115-9","DOIUrl":null,"url":null,"abstract":"<p>Adenosine is an ubiquitous neuromodulator that ensures cerebral homeostasis. It exerts numerous functions through the activation of G-protein-coupled adenosine receptors (ARs), in particular A<sub>1</sub> (A<sub>1</sub>R) and A<sub>2A</sub> (A<sub>2A</sub>R) receptors. Interestingly, A<sub>2A</sub>R levels are upregulated in cortical and hippocampal regions in several pathological conditions such as Alzheimer’s disease, tauopathies or epilepsia. Such abnormal upregulations have been particularly reported in astrocytes, glial cells that play a key role in regulating synaptic plasticity. However, the overall impact and the underlying mechanisms associated with increased A<sub>2A</sub>R in astrocytes remain poorly understood. In the present study, we induced the upregulation of A<sub>2A</sub>R in hippocampal astrocytes using dedicated AAVs and comprehensively evaluated the functional consequences in 4 months-old C57Bl6/J mice. Our results show that A<sub>2A</sub>R upregulation primarily promotes alterations of astrocyte reactivity, morphology and transcriptome, with a link to aging-like phenotype as well as secondary impairments of neuronal excitability and microglial phenotype. These changes driven by a restricted A<sub>2A</sub>R upregulation in hippocampal astrocytes were sufficient to induce impairments of short-term spatial memory and spatial learning. This study highlights the impact of astrocytic A<sub>2A</sub>R upregulation, as seen in various neurological conditions, on the development of a detrimental multicellular response associated with memory alterations and provides an additional proof-of-concept for the value of targeting this receptor in different neurodegenerative conditions.</p>","PeriodicalId":19008,"journal":{"name":"Molecular Psychiatry","volume":"14 1","pages":""},"PeriodicalIF":9.6000,"publicationDate":"2025-07-23","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Upregulation of adenosine A2A receptor in astrocytes is sufficient to trigger hippocampal multicellular dysfunctions and memory deficits\",\"authors\":\"Agathe Launay, Kevin Carvalho, Athénais Genin, Thibaut Gauvrit, Paola Nobili, Victoria Gomez-Murcia, Emma Augustin, Anaëlle Burgard, Johanne Gambi, Déborah Fourmy, Bryan Thiroux, Didier Vieau, Alexis-Pierre Bemelmans, Stephanie Le Gras, Luc Buée, Miranda E. Orr, Etienne Audinat, Anne-Laurence Boutillier, Gilles Bonvento, Karine Cambon, Emilie Faivre, David Blum\",\"doi\":\"10.1038/s41380-025-03115-9\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p>Adenosine is an ubiquitous neuromodulator that ensures cerebral homeostasis. It exerts numerous functions through the activation of G-protein-coupled adenosine receptors (ARs), in particular A<sub>1</sub> (A<sub>1</sub>R) and A<sub>2A</sub> (A<sub>2A</sub>R) receptors. Interestingly, A<sub>2A</sub>R levels are upregulated in cortical and hippocampal regions in several pathological conditions such as Alzheimer’s disease, tauopathies or epilepsia. Such abnormal upregulations have been particularly reported in astrocytes, glial cells that play a key role in regulating synaptic plasticity. However, the overall impact and the underlying mechanisms associated with increased A<sub>2A</sub>R in astrocytes remain poorly understood. 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Upregulation of adenosine A2A receptor in astrocytes is sufficient to trigger hippocampal multicellular dysfunctions and memory deficits
Adenosine is an ubiquitous neuromodulator that ensures cerebral homeostasis. It exerts numerous functions through the activation of G-protein-coupled adenosine receptors (ARs), in particular A1 (A1R) and A2A (A2AR) receptors. Interestingly, A2AR levels are upregulated in cortical and hippocampal regions in several pathological conditions such as Alzheimer’s disease, tauopathies or epilepsia. Such abnormal upregulations have been particularly reported in astrocytes, glial cells that play a key role in regulating synaptic plasticity. However, the overall impact and the underlying mechanisms associated with increased A2AR in astrocytes remain poorly understood. In the present study, we induced the upregulation of A2AR in hippocampal astrocytes using dedicated AAVs and comprehensively evaluated the functional consequences in 4 months-old C57Bl6/J mice. Our results show that A2AR upregulation primarily promotes alterations of astrocyte reactivity, morphology and transcriptome, with a link to aging-like phenotype as well as secondary impairments of neuronal excitability and microglial phenotype. These changes driven by a restricted A2AR upregulation in hippocampal astrocytes were sufficient to induce impairments of short-term spatial memory and spatial learning. This study highlights the impact of astrocytic A2AR upregulation, as seen in various neurological conditions, on the development of a detrimental multicellular response associated with memory alterations and provides an additional proof-of-concept for the value of targeting this receptor in different neurodegenerative conditions.
期刊介绍:
Molecular Psychiatry focuses on publishing research that aims to uncover the biological mechanisms behind psychiatric disorders and their treatment. The journal emphasizes studies that bridge pre-clinical and clinical research, covering cellular, molecular, integrative, clinical, imaging, and psychopharmacology levels.