Aloisi Elisabetta, Le Corf Katy, Dupuis Julien, Zhang Pei, Ginger Melanie, Labrousse Virginie, Spatuzza Michela, Georg Haberl Matthias, Costa Lara, Shigemoto Ryuichi, Tappe-Theodor Anke, Drago Filippo, Vincenzo Piazza Pier, Mulle Christophe, Groc Laurent, Ciranna Lucia, Catania Maria Vincenza, Frick Andreas
INSERM, Neurocentre Magendie, Physiopathologie de la plasticité neuronale, U1215, 33077, Bordeaux, cedex, France.
University of Bordeaux, Neurocentre Magendie, Physiopathologie de la plasticité neuronale, U1215, 33077, Bordeaux, cedex, France.
Nat Commun. 2017 Oct 24;8(1):1103. doi: 10.1038/s41467-017-01191-2.
Metabotropic glutamate receptor subtype 5 (mGluR5) is crucially implicated in the pathophysiology of Fragile X Syndrome (FXS); however, its dysfunction at the sub-cellular level, and related synaptic and cognitive phenotypes are unexplored. Here, we probed the consequences of mGluR5/Homer scaffold disruption for mGluR5 cell-surface mobility, synaptic N-methyl-D-aspartate receptor (NMDAR) function, and behavioral phenotypes in the second-generation Fmr1 knockout (KO) mouse. Using single-molecule tracking, we found that mGluR5 was significantly more mobile at synapses in hippocampal Fmr1 KO neurons, causing an increased synaptic surface co-clustering of mGluR5 and NMDAR. This correlated with a reduced amplitude of synaptic NMDAR currents, a lack of their mGluR5-activated long-term depression, and NMDAR/hippocampus dependent cognitive deficits. These synaptic and behavioral phenomena were reversed by knocking down Homer1a in Fmr1 KO mice. Our study provides a mechanistic link between changes of mGluR5 dynamics and pathological phenotypes of FXS, unveiling novel targets for mGluR5-based therapeutics.
代谢型谷氨酸受体5亚型(mGluR5)在脆性X综合征(FXS)的病理生理学中起着至关重要的作用;然而,其在亚细胞水平的功能障碍以及相关的突触和认知表型尚未得到探索。在这里,我们探究了mGluR5/Homer支架破坏对mGluR5细胞表面流动性、突触N-甲基-D-天冬氨酸受体(NMDAR)功能以及第二代Fmr1基因敲除(KO)小鼠行为表型的影响。通过单分子追踪,我们发现mGluR5在海马Fmr1 KO神经元的突触处移动性显著增强,导致mGluR5和NMDAR在突触表面的共聚集增加。这与突触NMDAR电流幅度降低、mGluR5激活的长时程抑制缺失以及NMDAR/海马体依赖性认知缺陷相关。在Fmr1 KO小鼠中敲低Homer1a可逆转这些突触和行为现象。我们的研究提供了mGluR5动力学变化与FXS病理表型之间的机制联系,揭示了基于mGluR5的治疗方法的新靶点。