BDNF controls bidirectional endocannabinoid-plasticity at corticostriatal synapses
Giuseppe Gangarossa, Sylvie Pérez, Yulia Dembitskaya, Ilya Prokin, Hugues Berry, Laurent Venance
Abstract
Open-access reader
Giuseppe Gangarossa, Sylvie Pérez, Yulia Dembitskaya, Ilya Prokin, Hugues Berry, Laurent Venance
Abstract
Open-access reader
ABSTRACT The dorsal striatum exhibits bidirectional corticostriatal synaptic plasticity, NMDAR- and endocannabinoids-(eCB)-mediated, necessary for the encoding of procedural learning. Therefore, characterizing factors controlling corticostriatal plasticity is of crucial importance. Brain-derived neurotrophic factor (BDNF) and its receptor, the tropomyosine receptor kinase-B (TrkB), shape striatal functions and their dysfunction deeply affect basal ganglia. BDNF/TrkB signaling controls NMDAR-plasticity in various brain structures including striatum. However, despite cross-talks between BDNF and eCBs, the role of BDNF in eCB-plasticity remains unknown. Here, we show that BDNF/TrkB signaling promotes eCB-plasticity (LTD and LTP) induced by rate-based (low-frequency stimulation) or spike-timing-based (spike-timing-dependent plasticity, STDP) paradigm in striatum. We show that TrkB activation is required for the expression and the scaling of both eCB-LTD and eCB-LTP. Using two-photon imaging of the dendritic spines combined with patch-clamp recordings, we show that TrkB activation induces an intracellular calcium boost, thus increasing eCB synthesis and release. We provide a mathematical model for the dynamics of the signaling pathways involved in corticostriatal plasticity. Finally, we show that TrkB activation allows an enlargement of the domain of expression of eCB-STDP. Our results reveal a novel role for BDNF/TrkB signaling in governing eCB-plasticity expression in striatum, and thus the engram of procedural learning.
OpenAlex reports 1 citations for this work. Citation counts describe recorded attention and do not establish research quality.
A contribution statement is not available in the OpenAlex record.
Method details are not available in the OpenAlex metadata.
Findings are not separately available in the OpenAlex metadata.
Limitations are not available in the OpenAlex metadata.
Application details are not available in the OpenAlex metadata.
ABSTRACT The dorsal striatum exhibits bidirectional corticostriatal synaptic plasticity, NMDAR- and endocannabinoids-(eCB)-mediated, necessary for the encoding of procedural learning. Therefore, characterizing factors controlling corticostriatal plasticity is of crucial importance. Brain-derived neurotrophic factor (BDNF) and its receptor, the tropomyosine receptor kinase-B (TrkB), shape striatal functions and their dysfunction deeply affect basal ganglia. BDNF/TrkB signaling controls NMDAR-plasticity in various brain structures including striatum. However, despite cross-talks between BDNF and eCBs, the role of BDNF in eCB-plasticity remains unknown. Here, we show that BDNF/TrkB signaling promotes eCB-plasticity (LTD and LTP) induced by rate-based (low-frequency stimulation) or spike-timing-based (spike-timing-dependent plasticity, STDP) paradigm in striatum. We show that TrkB activation is required for the expression and the scaling of both eCB-LTD and eCB-LTP. Using two-photon imaging of the dendritic spines combined with patch-clamp recordings, we show that TrkB activation induces an intracellular calcium boost, thus increasing eCB synthesis and release. We provide a mathematical model for the dynamics of the signaling pathways involved in corticostriatal plasticity. Finally, we show that TrkB activation allows an enlargement of the domain of expression of eCB-STDP. Our results reveal a novel role for BDNF/TrkB signaling in governing eCB-plasticity expression in striatum, and thus the engram of procedural learning.
Key concepts: Tropomyosin receptor kinase B, Synaptic plasticity, Neuroscience, Striatum, Brain-derived neurotrophic factor, Long-term potentiation, Metaplasticity, Endocannabinoid system