Side-by-side comparison of the effects of Gq- and Gi-DREADD-mediated astrocyte modulation on intracellular calcium dynamics and synaptic plasticity in the hippocampal CA1
Autor: | Dimitri De Bundel, Ilse Julia Smolders, Thomas M. Sanderson, Surajit Sahu, Zuner A. Bortolotto, Yana Van Den Herrewegen |
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Přispěvatelé: | Pharmaceutical and Pharmacological Sciences, Faculty of Medicine and Pharmacy, Experimental Pharmacology |
Jazyk: | angličtina |
Rok vydání: | 2021 |
Předmět: |
Male
hippocampus Genetic Vectors Long-Term Potentiation Short Report Calcium imaging Pharmaceutical Science Hippocampal formation GTP-Binding Protein alpha Subunits Gi-Go Hippocampus Designer Drugs Receptors G-Protein-Coupled Schaffer collateral Cellular and Molecular Neuroscience Mice medicine Animals Calcium Signaling RC346-429 Molecular Biology CA1 Region Hippocampal Clozapine long-term potentiation Neuronal Plasticity Chemistry Long-term potentiation Chemogenetics Intracellular signal transduction Mice Inbred C57BL calcium imaging medicine.anatomical_structure DREADDs Astrocytes Synaptic plasticity GTP-Binding Protein alpha Subunits Gq-G11 chemogenetics Neurology. Diseases of the nervous system LTP Neuroscience Astrocyte |
Zdroj: | Molecular Brain Molecular Brain, Vol 14, Iss 1, Pp 1-13 (2021) Van Den Herrewegen, Y, Sanderson, T M, Sahu, S, De Bundel, D, Bortolotto, Z A & Smolders, I 2021, ' Side-by-side comparison of the effects of Gq-and Gi-DREADD-mediated astrocyte modulation on intracellular calcium dynamics and synaptic plasticity in the hippocampal CA1 ', Molecular Brain, vol. 14, no. 1, 144, pp. 1-13 . https://doi.org/10.1186/s13041-021-00856-w |
ISSN: | 1756-6606 |
Popis: | Astrocytes express a plethora of G protein-coupled receptors (GPCRs) that are crucial for shaping synaptic activity. Upon GPCR activation, astrocytes can respond with transient variations in intracellular Ca2+. In addition, Ca2+-dependent and/or Ca2+-independent release of gliotransmitters can occur, allowing them to engage in bidirectional neuron-astrocyte communication. The development of designer receptors exclusively activated by designer drugs (DREADDs) has facilitated many new discoveries on the roles of astrocytes in both physiological and pathological conditions. They are an excellent tool, as they can target endogenous GPCR-mediated intracellular signal transduction pathways specifically in astrocytes. With increasing interest and accumulating research on this topic, several discrepancies on astrocytic Ca2+ signalling and astrocyte-mediated effects on synaptic plasticity have emerged, preventing a clear-cut consensus about the downstream effects of DREADDs in astrocytes. In the present study, we performed a side-by-side evaluation of the effects of bath application of the DREADD agonist, clozapine-N-oxide (10 µM), on Gq- and Gi-DREADD activation in mouse CA1 hippocampal astrocytes. In doing so, we aimed to avoid confounding factors, such as differences in experimental procedures, and to directly compare the actions of both DREADDs on astrocytic intracellular Ca2+ dynamics and synaptic plasticity in acute hippocampal slices. We used an adeno-associated viral vector approach to transduce dorsal hippocampi of male, 8-week-old C57BL6/J mice, to drive expression of either the Gq-DREADD or Gi-DREADD in CA1 astrocytes. A viral vector lacking the DREADD construct was used to generate controls. Here, we show that agonism of Gq-DREADDs, but not Gi-DREADDs, induced consistent increases in spontaneous astrocytic Ca2+ events. Moreover, we demonstrate that both Gq-DREADD as well as Gi-DREADD-mediated activation of CA1 astrocytes induces long-lasting synaptic potentiation in the hippocampal CA1 Schaffer collateral pathway in the absence of a high frequency stimulus. Moreover, we report for the first time that astrocytic Gi-DREADD activation is sufficient to elicit de novo potentiation. Our data demonstrate that activation of either Gq or Gi pathways drives synaptic potentiation through Ca2+-dependent and Ca2+-independent mechanisms, respectively. |
Databáze: | OpenAIRE |
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