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Sanchez-Prieto, J.

Publications and source records attributed to Sanchez-Prieto, J..

2 recordsLinked to original sources

The activation of mGluR4 rescues parallel fiber LTP, motor learning and social behavior in a mouse model of Fragile X Syndrome

Fragile X patients and mice lacking the Fragile X Mental Retardation Protein (FMRP) suffer from multiple behavioral alterations, including deficits in motor learning. We found that enhanced synaptic vesicle (SV) docking in cerebellar parallel fiber to Purkinje cell Fmr1KO synapses was associated with enhanced asynchronous release, which not only occludes further potentiation, but it also compromises presynaptic parallel fiber long-term potentiation (PF-LTP). A reduction in extracellular Ca2+ restored the readily releasable pool (RRP) size, rescuing {beta} adrenergic receptor-mediated potentiation and parallel fiber LTP. Interestingly, VU 0155041, a selective positive allosteric modulator of mGluR4, also restored both the RRP size and parallel fiber LTP. Moreover, when injected into Fmr1KO mice, VU 0155041 improved motor learning in skilled reaching, classical eyeblink conditioning and vestibuloocular reflex (VOR) tests, as well as improving the social behavior of these mice. Thus, pharmacological activation of mGluRs may offer therapeutic relief for motor learning and social deficits in Fragile X Syndrome.

neuroscience↗

Synaptic vesicle-bound molecular bridges organize sequential vesicle states along parallel pathways

Synaptic vesicle tethering, priming, and neurotransmitter release require a coordinated action of multiple protein complexes. While physiological experiments, interaction data, and structural studies of purified systems were essential for our understanding of the function of the individual complexes involved, they cannot combine high structural detail with the unperturbed organization of complexes within cells to resolve how the actions of individual complexes integrate. We employed cryo-electron tomography to simultaneously image multiple presynaptic protein complexes and lipids at molecular resolution in their native composition, conformation and environment. Our results argue that tethers comprising proteins Munc13 and SNAP25 differentially and spatially confine vesicles with single nanometer precision, define vesicle tethering states, and provide molecular mechanisms that guide vesicles towards fusion, which includes molecular priming by conversion to SNARE complex-dependent tethers. These findings present an example of a cellular function performed by an extended molecular assembly comprising multiple, molecularly diverse complexes.

neuroscience↗