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Repudi, S.

Publications and source records attributed to Repudi, S..

2 recordsLinked to original sources

Neuron-Specific WWOX Gene Therapy Produces Dose-Dependent, Durable Rescue in a Model of WWOX-Related Epileptic Encephalopathy

Biallelic loss-of-function mutations in WWOX cause a spectrum of neurodevelopmental disorders, including the severe, early-onset WOREE syndrome, frequently associated with intractable epilepsy and premature mortality, and the milder SCAR12, characterized by subtler neurological manifestations. While neuronal replacement of WWOX has emerged as a potential therapeutic strategy, the parameters required for safe, durable, and clinically translatable gene delivery remain undefined. Here, we systematically delineate the determinants of effective WWOX gene therapy by evaluating promoter selection, cellular targeting, vector configuration, dose, and developmental timing in a severe Wwox-null mouse model. Neuron-restricted expression driven by the human Synapsin I promoter uniquely enabled sustained phenotypic correction, whereas ubiquitous or oligodendrocyte-restricted expression failed to confer durable benefit. To better regulate transgene expression, we generated a vector lacking the WPRE element, enabling dose calibration within a clinically relevant range. Comparative dose-response analyses identified an optimal therapeutic dose of AAV9-hSynI-WWOX that produced robust, dose-dependent rescue of survival and growth. Moreover, the rescued mice displayed glucose, behavioral function and fertility indistinguishable from WT mice, accompanied by long-term restoration of WWOX DNA, transcript, and protein across central and peripheral neural tissues without detectable hepatic expression. Neuronal WWOX reconstitution promoted widespread myelination and attenuated neuroinflammatory responses, including astrogliosis and microglial activation to levels indistinguishable from WT. Continuous electrocorticographic monitoring uncovered early postnatal neuronal hyperexcitability in Wwox-null mice, which was effectively suppressed by therapeutic WWOX delivery. Finally, our data define an early postnatal therapeutic window in Wwox-null mice, showing that treatment initiated between postnatal days 1 and 5 supports durable rescue. Together, these findings define a rigorously optimized, neuron-targeted AAV9-WWOX gene therapy framework and establish critical design and timing principles for translational treatment of WWOX-associated developmental and epileptic encephalopathies.

neuroscience↗

WWOX deficiency uncovers a cell-autonomous mechanism impairing myelin repair

Remyelination is essential for neuronal function and plasticity, and its failure contributes to multiple sclerosis (MS) and other neurodegenerative disorders. Yet, the molecular programs governing oligodendrocyte precursor cell (OPC) differentiation and remyelination remain incompletely defined. Here, we identify the WW domain-containing oxidoreductase (WWOX) as a critical cell-autonomous regulator of oligodendrocyte differentiation and myelin repair. Reanalysis of single-nucleus RNA sequencing from MS lesions revealed WWOX as one of the most significantly dysregulated oligodendroglial genes. Conditional deletion of Wwox in oligodendroglia impaired OPC differentiation, favouring aberrant proliferation and blocking myelin regeneration after cuprizone-induced demyelination. Single-nucleus transcriptomics confirmed profound transcriptional reprogramming in WWOX-deficient oligodendroglia during remyelination, with enrichment of WNT and TGF{beta} signalling and cell cycle programs. Mechanistically, WWOX physically interacts with the master transcription factor SOX10 via its WW1 domain, stabilising SOX10 protein and sustaining its downstream myelin gene network. Loss of WWOX reduced SOX10 stability and activity, providing a direct mechanistic link to defective OPC differentiation. Together, our findings uncover WWOX as an essential orchestrator of remyelination and position the WWOX-SOX10 axis as a promising therapeutic target for enhancing myelin repair in MS and related demyelinating disorders.

neuroscience↗