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Articles, Cellular/Molecular

Differential GABAB-Receptor-Mediated Effects in Perisomatic- and Dendrite-Targeting Parvalbumin Interneurons

Sam A. Booker, Anna Gross, Daniel Althof, Ryuichi Shigemoto, Bernhard Bettler, Michael Frotscher, Matthew Hearing, Kevin Wickman, Masahiko Watanabe, Ákos Kulik and Imre Vida
Journal of Neuroscience 1 May 2013, 33 (18) 7961-7974; DOI: https://doi.org/10.1523/JNEUROSCI.1186-12.2013
Sam A. Booker
1NeuroCure Cluster of Excellence, Institute of Integrative Neuroanatomy, Charité, D-10117 Berlin, Germany,
2School of Life Sciences, University of Glasgow, Glasgow, G12 8QQ, United Kingdom,
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Anna Gross
3Institute of Anatomy and Cell Biology,
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Daniel Althof
4Spemann Graduate School of Biology and Medicine,
5Faculty of Biology,
7Department of Physiology II, University of Freiburg, D-79104 Freiburg, Germany,
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Ryuichi Shigemoto
8Division of Cerebral Structure, National Institute for Physiological Sciences, Myodaiji, Okazaki 444–8787, Japan,
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Bernhard Bettler
9Department of Biomedicine, Institute of Physiology, Pharmazentrum, University of Basel, 4056 Basel, Switzerland,
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Michael Frotscher
10Center for Molecular Neurobiology Hamburg, University of Hamburg, D-20246 Hamburg, Germany,
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Matthew Hearing
11Department of Pharmacology, University of Minnesota, Minneapolis, Minnesota 55455, and
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Kevin Wickman
11Department of Pharmacology, University of Minnesota, Minneapolis, Minnesota 55455, and
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Masahiko Watanabe
12Department of Anatomy, Graduate School of Medicine, Hokkaido University, Sapporo 0608638, Japan
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Ákos Kulik
6BIOSS Centre for Biological Signalling Studies, and
7Department of Physiology II, University of Freiburg, D-79104 Freiburg, Germany,
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Imre Vida
1NeuroCure Cluster of Excellence, Institute of Integrative Neuroanatomy, Charité, D-10117 Berlin, Germany,
2School of Life Sciences, University of Glasgow, Glasgow, G12 8QQ, United Kingdom,
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Abstract

Inhibitory parvalbumin-containing interneurons (PVIs) control neuronal discharge and support the generation of theta- and gamma-frequency oscillations in cortical networks. Fast GABAergic input onto PVIs is crucial for their synchronization and oscillatory entrainment, but the role of metabotropic GABAB receptors (GABABRs) in mediating slow presynaptic and postsynaptic inhibition remains unknown. In this study, we have combined high-resolution immunoelectron microscopy, whole-cell patch-clamp recording, and computational modeling to investigate the subcellular distribution and effects of GABABRs and their postsynaptic effector Kir3 channels in rat hippocampal PVIs. Pre-embedding immunogold labeling revealed that the receptors and channels localize at high levels to the extrasynaptic membrane of parvalbumin-immunoreactive dendrites. Immunoreactivity for GABABRs was also present at lower levels on PVI axon terminals. Whole-cell recordings further showed that synaptically released GABA in response to extracellular stimulation evokes large GABABR-mediated slow IPSCs in perisomatic-targeting (PT) PVIs, but only small or no currents in dendrite-targeting (DT) PVIs. In contrast, paired recordings demonstrated that GABABR activation results in presynaptic inhibition at the output synapses of both PT and DT PVIs, but more strongly in the latter. Finally, computational analysis indicated that GABAB IPSCs can phasically modulate the discharge of PT interneurons at theta frequencies. In summary, our results show that GABABRs differentially mediate slow presynaptic and postsynaptic inhibition in PVIs and can contribute to the dynamic modulation of their activity during oscillations. Furthermore, these data provide evidence for a compartment-specific molecular divergence of hippocampal PVI subtypes, suggesting that activation of GABABRs may shift the balance between perisomatic and dendritic inhibition.

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The Journal of Neuroscience: 33 (18)
Journal of Neuroscience
Vol. 33, Issue 18
1 May 2013
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Differential GABAB-Receptor-Mediated Effects in Perisomatic- and Dendrite-Targeting Parvalbumin Interneurons
Sam A. Booker, Anna Gross, Daniel Althof, Ryuichi Shigemoto, Bernhard Bettler, Michael Frotscher, Matthew Hearing, Kevin Wickman, Masahiko Watanabe, Ákos Kulik, Imre Vida
Journal of Neuroscience 1 May 2013, 33 (18) 7961-7974; DOI: 10.1523/JNEUROSCI.1186-12.2013

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Differential GABAB-Receptor-Mediated Effects in Perisomatic- and Dendrite-Targeting Parvalbumin Interneurons
Sam A. Booker, Anna Gross, Daniel Althof, Ryuichi Shigemoto, Bernhard Bettler, Michael Frotscher, Matthew Hearing, Kevin Wickman, Masahiko Watanabe, Ákos Kulik, Imre Vida
Journal of Neuroscience 1 May 2013, 33 (18) 7961-7974; DOI: 10.1523/JNEUROSCI.1186-12.2013
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