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Coode, E.

Publications and source records attributed to Coode, E..

2 recordsLinked to original sources

Cross-platform multi-laboratory screening identifies HUWE1, USP33 and USP20 as negative-regulators of autophagy or mitophagy with relevance to neurodegeneration

Autophagy and mitophagy are essential cellular processes implicated in neurodegenerative diseases, yet few tractable targets have been robustly validated for therapeutic modulation of these pathways. In an industry-academia consortium we carried out an extensive literature review and expert curation, leading to selection of 29 genes previously reported to enhance autophagy upon genetic or pharmacological modulation. These genes were classified based on whether downregulation or overexpression induced autophagic activity. Using siRNA knockdown, small-molecule modulators, and transient transfection approaches, we systematically screened these targets in parallel across HeLa and HEK-293 cell lines using high- and low-content phenotypic imaging. Promising candidates were further evaluated in induced pluripotent stem cell (iPSC)-derived neurons and in Drosophila models. Three targets emerged as top candidates: HUWE1 downregulation consistently enhanced autophagy and aggregate clearance, while USP33 downregulation promoted mitophagy. We also identified USP20, a close homologue of USP33, as an inhibitor of mitophagy, a role not previously assigned to this protein. These effects on autophagy/mitophagy were corroborated in Drosophila, highlighting their potential functional relevance across species. This cross-platform, multi-laboratory study establishes a framework for identifying and validating regulators of autophagy and mitophagy and provides a route which enables a comprehensive reassessment of the current target literature in this field. The validation of HUWE1, USP20, and USP33 as candidate therapeutic targets offers new opportunities for intervention in neurodegenerative diseases.

neuroscience↗

Synaptotoxic effects of extracellular tau are mediated by its microtubule-binding region

Immunotherapies targeting extracellular tau share the premise that interrupting cell-to-cell spread of tau pathology in Alzheimers disease (AD) will slow dementia pathogenesis. How these interventions affect the actions of synaptotoxic, extracellular tau species that may help mediate cognitive impairment is relatively unknown. Here, we assayed synaptic plasticity disruption in anaesthetised live rats caused by intracerebral injection of synaptotoxic tau present either in (a) secretomes of induced pluripotent stem cell-derived neurons (iNs) from people with Trisomy 21, the most common genetic cause of AD, or (b) aqueous extracts of human AD brain. Extracellular tau in iN secretomes was found to include fragments that contain the extended microtubule binding regions of tau, MTBR/R and adjacent C-terminal peptides. Immunodepletion or co-injection with antibodies targeting epitopes within these fragments prevented the acute disruption of synaptic plasticity by these patient-derived synaptotoxic tau preparations. Conversely, a recombinant human tau fragment encompassing the core MTBR/R- region present in tau fibrils, tau297-391 potently mimicked this deleterious action of patient-derived tau. MTBR/R-directed antibodies also rapidly reversed a very persistent synaptotoxic effect of soluble brain tau. Our findings reveal a hitherto relatively unexplored potential benefit of targeting MTBR/R.

neuroscience↗