| Literature DB >> 33526652 |
Dávid Nagy1,2, Katelin A Ennis3, Ru Wei4, Susan C Su3, Christopher A Hinckley5, Rong-Fang Gu4, Benbo Gao4, Ramiro H Massol5, Chris Ehrenfels5, Luke Jandreski1, Ankur M Thomas3, Ashley Nelson3, Stefka Gyoneva3, Mihály Hajós1,6, Linda C Burkly7.
Abstract
Identifying molecular mediators of neural circuit development and/or function that contribute to circuit dysfunction when aberrantly reengaged in neurological disorders is of high importance. The role of the TWEAK/Fn14 pathway, which was recently reported to be a microglial/neuronal axis mediating synaptic refinement in experience-dependent visual development, has not been explored in synaptic function within the mature central nervous system. By combining electrophysiological and phosphoproteomic approaches, we show that TWEAK acutely dampens basal synaptic transmission and plasticity through neuronal Fn14 and impacts the phosphorylation state of pre- and postsynaptic proteins in adult mouse hippocampal slices. Importantly, this is relevant in two models featuring synaptic deficits. Blocking TWEAK/Fn14 signaling augments synaptic function in hippocampal slices from amyloid-beta-overexpressing mice. After stroke, genetic or pharmacological inhibition of TWEAK/Fn14 signaling augments basal synaptic transmission and normalizes plasticity. Our data support a glial/neuronal axis that critically modifies synaptic physiology and pathophysiology in different contexts in the mature brain and may be a therapeutic target for improving neurophysiological outcomes.Entities:
Keywords: Fn14; TWEAK; stroke; synaptic plasticity; synaptic transmission
Year: 2021 PMID: 33526652 PMCID: PMC8017933 DOI: 10.1073/pnas.2001679118
Source DB: PubMed Journal: Proc Natl Acad Sci U S A ISSN: 0027-8424 Impact factor: 11.205