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Goudet, C.

Publications and source records attributed to Goudet, C..

4 recordsLinked to original sources

Tilted striatofugal balance and beneficial effects of facilitating mGlu4 receptor activity in the Fmr1-/- mouse model of Fragile X Syndrome

Fragile X Syndrome (FXS) is the leading monogenic cause of autism spectrum disorder (ASD). To date, no approved pharmacological treatment alleviates social impairments in patients with FXS. Since D1 and D2 dopamine receptor-expressing striatal projection neurons (SPNs) were shown to regulate ASD-sensitive behaviors, we explored whether the balance of activity between D1- and D2-SPNs would be biased in the Fmr1-/- mouse model of FXS. We evaluated striatal function in Fmr1-/- and Fmr1+/+ mice under pharmacological challenge and performed RNAscope(R) in situ hybridization following social interaction to assess the activity of SPNs in the nucleus accumbens (NAc) and dorsal striatum (DS). We evidenced a decrease in D1-SPN activity, biasing the D1/D2-SPN balance towards an excessive weight of D2-SPN outputs. We then evaluated the effects of compounds that repress D2-SPN activity on behavioral impairments in Fmr1-/- mice. Systemically facilitating mGlu4 or blocking A2A receptor activity relieved behavioral deficits in this model. Finally, we tested the hypothesis that a tilt of the D1/D2-SPN balance in Fmr1-/- mice may contribute to their social deficit by facilitating mGlu4 activity directly in the projection site of NAc D2-SPNs. Social interaction in Fmr1-/- mice was fully rescued by photopharmacological activation of mGlu4 in the ventral pallidum (VP), where NAc D2-SPNs project. This result supports our hypothesis of excessive D2-SPN outputs and highlights the contribution of the VP in controlling social behavior. In conclusion, pharmacological compounds that repress D2-SPN activity demonstrate a promising therapeutic potential to relieve ASD-like deficits in FXS.

neuroscience↗

Shedding light on left hippocampal mGlu5 in Alzheimer's disease

Metabotropic glutamate receptor 5 (mGlu5) plays a central role in synaptic plasticity and memory, and has emerged as a potential therapeutic target in Alzheimers disease (AD). While asymmetries in hippocampal function have been observed in AD patients, the lateralized contribution of mGlu5 signaling to cognitive decline remains unclear. Here, we show the presence of a physiological left-right asymmetry in mGlu5 expression in the hippocampus of wild-type mice, with higher levels in the left hemisphere, consistent with previous observations. Importantly, we reveal that this asymmetry is lost in J20 AD model mice due to a selective reduction of mGlu5 in the left hippocampus. Then, using the light-controllable negative allosteric modulator Alloswitch-1, we demonstrate that selective inhibition of mGlu5 in the left, but not right, hippocampus is both necessary and sufficient to restore working and short-term memory in J20 mice. This left-specific modulation also reverses downstream pathological signaling, including aberrant Pyk2 and GSK3-{beta} activation and tau hyperphosphorylation, in both hippocampi. Our findings identify a functional lateralization of mGlu5 in hippocampal circuits and highlight the potential of spatially targeted photopharmacology for precise intervention in early AD pathology.

neuroscience↗

A photoswitchable positive allosteric modulator to control the activation of the metabotropic glutamate receptor 5 by light

1.The metabotropic glutamate receptor 5 (mGlu5) is widely expressed in the brain, where it plays an important role in synaptic plasticity, learning and memory, making it a therapeutic target of interest in various neurological disorders. In this study, we developed a photoswitchable positive allosteric modulator (PAM) of the mGlu5, as a novel tool for this clinically relevant drug target. To that aim, we used an azologisation strategy of the mGlu5 PAM agonist VU0424465 leading to the molecule azoglurax. We observed a reversible photoisomerization of azoglurax in solution with optimal wavelengths of 365 nm and 435 nm for trans to cis and cis to trans isomerization, respectively. In cell-based assays, azoglurax potentiates the agonist-induced activity of mGlu5 with a sub-micromolar potency in the dark. This potency is reduced under UV illumination. Similar to its parent molecule, azoglurax acts as an allosteric agonist of mGlu5, activating the receptor in absence of glutamate, as demonstrated on a glutamate-insensitive mutant receptor. Docking and site-directed mutagenesis experiments also suggest that azoglurax and VU0424465 bind the same pocket. In addition, molecular dynamics on cis-azoglurax-bound mGlu5 suggests that it azoglurax cis isomer does not bind stably in the receptor, in contrast to the trans-isomer, explaining the difference of activity between the two isomers. In conclusion, azoglurax is the first mGlu5 photoswitchable PAM agonist reported to date, retaining the properties and the binding mode of its parent in the dark, while the insertion of an azobenzene confers light-regulated activity. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=138 SRC="FIGDIR/small/629646v1_ufig1.gif" ALT="Figure 1"> View larger version (37K): org.highwire.dtl.DTLVardef@1e0c1f4org.highwire.dtl.DTLVardef@dd7e36org.highwire.dtl.DTLVardef@1892657org.highwire.dtl.DTLVardef@1343743_HPS_FORMAT_FIGEXP M_FIG O_FLOATNOGraphical abstractC_FLOATNO C_FIG

pharmacology and toxicology↗

A 'double-edged' role for type-5 metabotropic glutamate receptors in pain disclosed by light-sensitive drugs

Knowing the site of drug action is important to optimize effectiveness and address any side effects. We used light-sensitive drugs to identify the brain region-specific role of mGlu5 metabotropic glutamate receptors in the control of pain. Optical activation of systemic JF-NP-26, a caged, normally inactive, negative allosteric modulator (NAM) of mGlu5 receptors, in cingulate, prelimbic and infralimbic cortices and thalamus inhibited neuropathic pain hypersensitivity. Systemic treatment of alloswitch-1, an intrinsically active mGlu5 receptor NAM, caused analgesia, and the effect was reversed by light-induced drug inactivation in in the prelimbic and infralimbic cortices, and thalamus. This demonstrates that mGlu5 receptor blockade in the medial prefrontal cortex and thalamus is both sufficient and necessary for the analgesic activity of mGlu5 receptor antagonists. Surprisingly, when light was delivered in the basolateral amygdala, local activation of systemic JF-NP-26 reduced pain thresholds, whereas inactivation of alloswitch-1 enhanced analgesia. Electrophysiological analysis showed that alloswitch-1 increased excitatory synaptic responses in prelimbic pyramidal neurons evoked by stimulation of BLA input, and decreased feedforward inhibition of amygdala output neurons by BLA. Both effects were reversed by optical silencing and reinstated by optical reactivation of alloswitch-1. These findings demonstrate for the first time that the action of mGlu5 receptors in the pain neuraxis is not homogenous, and suggest that blockade of mGlu5 receptors in the BLA may limit the overall analgesic activity of mGlu5 receptor antagonists. This could explain the suboptimal effect of mGlu5 NAMs on pain in human studies and validate photopharmacology as an important tool to determine ideal target sites for systemic drugs.

neuroscience↗