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Miralles, R. M.

Publications and source records attributed to Miralles, R. M..

2 recordsLinked to original sources

Base Editing Rescue of Seizures and SUDEP in SCN8A Developmental Epileptic Encephalopathy

SCN8A encodes the voltage-gated sodium channel Nav1.6 which plays a key role in facilitating neuronal excitability. Mutations in SCN8A, particularly gain-of-function missense variants, are associated with SCN8A developmental and epileptic encephalopathy (DEE), a severe epilepsy syndrome characterized by spontaneous seizures, movement disorders, cognitive dysfunction, and sudden unexpected death in epilepsy (SUDEP). The recurrent SCN8A variant R1872W destabilizes inactivation of the sodium channel, resulting in neuronal hyperexcitability and onset of seizures. Current treatments, including anti-seizure medications (ASMs) that broadly target sodium channels, are often ineffective in SCN8A DEE patients and are associated with significant side effects, highlighting the need for targeted therapies. In this study, we utilized base editing as a therapeutic strategy to correct the patient derived R1872W SCN8A variant. Using two engineered mammalian cell line screens, we identified several targeting constructs that successfully reverted the R1872W variant to the reference allele. Our most effective construct, a modified adenine base editor, along with a paired successful guide RNA, was selected and packaged within a dual PhP.eB-adeno-associated virus (AAV) delivery system. This dual AAV therapy, referred to as SCN8A-ABE, was administered to mice expressing the R1872W variant at P2. Treatment with SCN8A-ABE significantly increased survival of mice expressing R1872W and either significantly reduced or completely inhibited seizure occurrence. Assessment of editing efficiencies revealed approximately 30% conversion of the mutant tryptophan to wildtype arginine observable in RNA transcripts from hippocampal and cortex tissue. Electrophysiological recordings revealed a rescue of seizure-associated neuronal hyperexcitability and a suppression of the pathogenic sodium channel behavior in treated mice. Associated comorbidities, including movement disorders and anxiety-like behaviors, were also improved in treated mice. These findings demonstrate the profound potential of base editing as a targeted and effective therapeutic approach for SCN8A DEE, addressing the underlying genetic mutation driving the disease.

bioengineering↗

Parvalbumin Interneuron Impairment Leads to Synaptic Transmission Deficits and Seizures in SCN8A Epileptic Encephalopathy

SCN8A epileptic encephalopathy (EE) is a severe epilepsy syndrome resulting from de novo mutations in the voltage-gated sodium channel Nav1.6, encoded by the gene SCN8A. Nav1.6 is expressed in both excitatory and inhibitory neurons, yet previous studies have primarily focused on the impact SCN8A mutations have on excitatory neuron function, with limited studies on the importance of inhibitory interneurons to seizure onset and progression. Inhibitory interneurons are critical in balancing network excitability and are known to contribute to the pathophysiology of other epilepsies. Parvalbumin (PV) interneurons are the most prominent inhibitory neuron subtype in the brain, making up about 40% of inhibitory interneurons. Notably, PV interneurons express high levels of Nav1.6. To assess the role of PV interneurons within SCN8A EE, we used two mouse models harboring patient-derived SCN8A gain-of-function mutations, Scn8aD/+, where the SCN8A mutation N1768D is expressed globally, and Scn8aW/+-PV, where the SCN8A mutation R1872W is selectively expressed in PV interneurons. Expression of the R1872W SCN8A mutation selectively in PV interneurons led to the development of spontaneous seizures in Scn8aW/+-PV mice and seizure-induced death, decreasing survival compared to wild-type. Electrophysiology studies showed that PV interneurons in Scn8aD/+ and Scn8aW/+-PV mice were susceptible to depolarization block, a state of action potential failure. Scn8aD/+ and Scn8aW/+-PV interneurons also exhibited increased persistent sodium current, a hallmark of SCN8A gain-of-function mutations that contributes to depolarization block. Evaluation of synaptic connections between PV interneurons and pyramidal cells showed an increase in synaptic transmission failure at high frequencies (80-120Hz) as well as an increase in synaptic latency in Scn8aD/+ and Scn8aW/+-PV interneurons. These data indicate a distinct impairment of synaptic transmission in SCN8A EE, potentially decreasing overall cortical network inhibition. Together, our novel findings indicate that failure of PV interneuron spiking via depolarization block along with frequency-dependent inhibitory synaptic impairment likely elicits an overall reduction in the inhibitory drive in SCN8A EE, leading to unchecked excitation and ultimately resulting in seizures and seizure-induced death.

neuroscience↗