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Biomedical subjects

Kota Kamizato

Publications and source records attributed to Kota Kamizato.

2 recordsLinked to original sources

Base editing rescues a hereditary motor neuron disease in mouse and patient-derived iPSC organoid models.

In hereditary motor neuron diseases (MNDs), including forms of amyotrophic lateral sclerosis (ALS) caused by single-nucleotide variants, effective therapeutic strategies need to address both gain- and loss-of-function mechanisms. Genome editing-based gene therapy represents a promising approach for simultaneously targeting these mechanisms. To establish proof-of-concept for base editing in a hereditary MND, we targeted the P285L variant in the TRK-fused gene (TFG), which causes hereditary motor and sensory neuropathy with proximal dominant involvement (HMSN-P), a disorder that shares clinical and histopathological features with ALS. We identified the optimal adenine base editor by comparing candidate editors in HMSN-P patient-derived induced pluripotent stem cells (iPSCs). We then generated a transgenic mouse model expressing human TFG P285L and evaluated the selected editor by subpial delivery of adeno-associated virus (AAV) vectors to the spinal cord. AAV-mediated base editing prolonged survival, preserved motor neurons, and attenuated axon loss in ventral nerve roots. Treatment with the selected base editing vector reduced TFG aggregation and suppressed neuronal death in HMSN-P iPSC-derived neuromuscular organoids. Collectively, these findings support the therapeutic potential of base editing for hereditary MNDs.

AAV

Treatment of spinal injury muscle spasticity by spinal subpial AAV9-GAD65/VGAT delivery: An efficacy and safety study in rat, pig, and NHP.

The loss in segmental inhibitory GABAergic tone plays the key role in the development of spinal injury-induced muscle spasticity. We use a subpial segment-targeted delivery of adeno-associated virus vector(s) expressing GAD65 (glutamic acid decarboxylase-65) and VGAT (vesicular GABA transporter) transgenes in rats with spinal transection-induced spasticity. In treated animals, a significant suppression in spasticity was seen at 5-8 weeks after treatment. Naive rats, pigs, and non-human primates (NHPs) injected with human equivalent dose of treatment vectors and surviving for 3 weeks to 4.5 years showed normal motor function and pinch-evoked response. A significant increase in the number of VGLUT2 terminals co-expressing GAD65 and VGAT protein in vector-injected segment was seen. This corresponded with the presence of transgene-specific rat Gad2 or human GAD2 and rat Slc32a1 or human SLC32A1 mRNA signal. No spinal toxicity was noted in NHPs at 4.5 years post vector delivery. Analysis of peripheral organs (liver, spleen, and skeletal muscle) showed minimal or no detectable transgenes in pigs and NHPs. These data demonstrate that a single-time-point spinal-segment-targeted subpial delivery of GAD65/VGAT transgenes is effective in suppressing spinal injury-induced spasticity and has a favorable long-term safety profile as defined by normal neurological function and histopathology in naive pigs and NHPs.

Animals