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Feller, B.

Publications and source records attributed to Feller, B..

2 recordsLinked to original sources

α-synuclein preformed fibrils bind to β-neurexins and impair β-neurexin-mediated presynaptic organization

Synucleinopathies form a group of neurodegenerative diseases defined by misfolding and aggregation of alpha-synuclein (-syn). Abnormal accumulation and spreading of -syn aggregates lead to synapse dysfunction and neuronal cell death. Yet, little is known about synaptic mechanisms underlying -syn pathology. Here we identified {beta}-isoforms of neurexins ({beta}-NRXs) as presynaptic organizing proteins that interact with -syn preformed fibrils (-syn PFFs), toxic -syn aggregates, but not -syn monomers. Our cell surface protein binding assays and surface plasmon resonance assays reveal that -syn PFFs bind directly to {beta}-NRX through their N-terminal histidine-rich domain (HRD) at nanomolar range (Kd: ~500 nM monomer equivalent). Furthermore, our artificial synapse formation assays show that -syn PFFs diminish excitatory and inhibitory presynaptic organization induced by a specific isoform of neuroligin 1 that binds only {beta}-NRXs, but not -isoforms of neurexins. Thus, our data suggest that -syn PFFs interact with {beta}-NRXs to inhibit {beta}-NRX-mediated presynaptic organization, providing novel molecular insight into how -syn PFFs induce synaptic pathology in synucleinopathies such as Parkinsons disease and dementia with Lewy bodies.

neuroscience↗

SorCS1 inhibits amyloid-β binding to neurexin and rescues amyloid-β-induced synaptic pathology

Amyloid-{beta} oligomers (A{beta}Os), toxic peptide aggregates found in Alzheimers disease (AD), cause synapse pathology. A{beta}Os interact with Neurexins (NRXs), key synaptic organizers, and this interaction dampens normal trafficking and function of NRXs. Axonal trafficking of NRX is in part regulated by its interaction with SorCS1, a protein sorting receptor, but the impact of SorCS1 regulation of NRXs in A{beta} pathology was previously unstudied. Here, we show competitive interaction of SorCS1 and A{beta}Os with {beta}-NRXs and rescue effects of SorCS1 on A{beta}O-induced synaptic pathology. Like A{beta}Os, SorCS1 binds to NRX1{beta} through the histidine-rich-domain (HRD) of NRX1{beta}, and SorCS1 and A{beta}Os compete for NRX1{beta} binding. In cultured hippocampal neurons, SorCS1 colocalizes with NRX1{beta} on the axon surface, and axonal expression of SorCS1 rescues A{beta}O-induced impairment of NRX-mediated presynaptic organization and presynaptic vesicle recycling as well as A{beta}O-induced structural defects in excitatory synapses. Thus, we reveal a role of SorCS1 in the rescue of A{beta}O-induced NRX dysfunction and synaptic pathology, providing the basis for a novel potential therapeutic strategy for AD.

neuroscience↗