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Chilcott, E. M.

Publications and source records attributed to Chilcott, E. M..

2 recordsLinked to original sources

Next Generation AAV-F Capsid gene therapy rescues disease pathology in a model of Pyruvate Dehydrogenase Complex Deficiency

Pyruvate dehydrogenase complex deficiency (PDHD) is a severe mitochondrial disorder most frequently caused by pathogenic variants in PDHA1, leading to neurodevelopmental delay and early mortality, necessitating brain-targeted interventions. Using a brain-specific Pdha1 knockout mouse model, we compared intracerebroventricular delivery of AAV9 capsid and a recently described synthetic neurotropic AAV-F capsid, both expressing human PDHA1 coding sequence driven by a constitutive CAG promoter. Newborn mice received, titre matched AAV9 or AAV-F or AAV9 at ten-fold higher dose. Low-dose AAV-F and high-dose AAV9 significantly improved survival, and restored PDH enzyme activity, metabolite profiles, and brain histopathology to near wild-type levels. However, treated mice showed reduced locomotion by P100 and impaired motor function. Importantly, AAV-F achieved broad CNS transduction with minimal liver expression, outperforming AAV9 at lower dose. There results support the therapeutic potential of AAV-based gene therapy for PDHD and highlighting AAV-F as a promising capsid for efficient, CNS specific delivery.

neuroscience↗

AAV delivery of RNA editing machinery rescues SUDEP and seizure phenotype in a mouse model of Dravet Syndrome

Dravet syndrome (DS) is a severe childhood genetic epilepsy, caused by de novo heterozygous mutations in SCN1A, resulting in a loss-of-function of the voltage-gated sodium ion channel, Nav1.1. Nav1.1 is expressed in the brain, and at a lower level, in the heart. DS manifests in the first year of life. Patients exhibit tonic-clonic seizures, febrile seizures, cognitive decline, developmental delays, ataxia, and sudden unexpected death from epilepsy (SUDEP). We have developed a novel AAV-F mediated CRISPR-Cas-inspired RNA targeting system (CIRTS) preclinical treatment to increase endogenous Scn1a and ameliorate the disease phenotype in a clinically-relevant heterozygous loss-of-function mouse model of DS. We designed novel guide RNAs (gRNAs) to target the long non-coding RNA, (or natural antisense transcript) of Scn1a to increase the expression of Scn1a mRNA in DS mice. We show that intracerebroventricular and intravenous administration of AAV-F-CIRTS-gRNA9 to target the brain and the heart to neonatal Scn1a+/-mice resulted in a significant increase in survival, and a reduction in SUDEP, febrile seizures and seizure duration. These findings provide proof-of-concept evidence that an AAV-F-CIRTS mediated therapy hold promise as a potential treatment for DS.

neuroscience↗