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Chilcott, E.

Publications and source records attributed to Chilcott, E..

2 recordsLinked to original sources

AAV9-mediated targeting of natural antisense transcript as a novel treatment for Dravet Syndrome

Dravet syndrome (DS) is a severe childhood onset developmental and epileptic encephalopathy which leads to life-long disability. Symptoms usually manifest in the first year of life and include prolonged severe seizures, developmental delay and severe intellectual disability. DS patients have an increased mortality rate, including sudden unexpected death in epilepsy (SUDEP). Approximately 90% of patients carry a heterozygous loss-of-function mutation in the SCN1A gene, which encodes a voltage-gated sodium ion channel, NaV1.1. The NaV1.1 channel is expressed in the brain and at a lower level, in the heart. Previous studies have identified a long non-coding RNA (lncRNA) which specifically downregulates SCN1A gene expression. This natural antisense transcript (NAT) can be modulated by AntagoNATs, small synthetic oligonucleotides developed to inhibit NAT function. In a DS mouse model, AntagoNATs were shown to modulate Scn1a expression by targeting the Scn1a NAT, improving seizure frequency after repeated administration. Here, we have developed novel AntagoNATs and incorporated these into a clinically relevant adeno-associated virus serotype 9 (AAV9) gene therapy vector, to test in a DS mouse model (Scn1a+/-) and provide a one-off treatment approach. Eighteen AntagoNATs were tested in vitro; from the best performing candidates, we selected two AntagoNAT sequences (K & H) for in vivo testing as they had the highest homology (90%) to human SCN1A NAT. We administered both vectors to newborn Scn1a+/- mice via intracerebroventricular (ICV) and intravenous (IV) injection to target the brain and heart. AAV9-AntagoNAT-H significantly increased survival, decreased febrile seizures and reduced spontaneous seizure frequency compared to the PBS control group. When administered at P14 by ICV and IV injection, AAV9-AntagoNAT-H increased survival. In this proof-of-concept study, we have demonstrated for the first time the delivery of AntagoNAT technology via an AAV9 vector and thus offering the possibility of a one-time treatment for DS patients.

molecular biology↗

Spinal cord pathology in a Dravet Syndrome mouse model

SummaryO_ST_ABSObjectivesC_ST_ABSDravet syndrome is a severe epileptic encephalopathy that begins in early childhood. More than 80% of patients with Dravet syndrome exhibit a haploinsufficiency in SCN1A, which encodes the voltage-gated sodium ion channel NaV1.1. The epilepsy is believed be caused by specific deficit of SCN1A in inhibitory interneurons of the hippocampus. However, the aetiology of other symptoms including gait disturbances, ataxia, cardiac issues and dysautonomia is less clear. MethodsIn an Scn1a knock-out (Scn1a-/-) mouse model which recapitulates clinical phenotypes, we assessed NaV1.1 and neuroinflammation throughout the central nervous system. ResultsConsistent with current understanding, wild-type expression of NaV1.1 transcript and protein were absent in knock-out mice in the prefrontal cortex, striatum, hippocampus, thalamus, and cerebellum. Increased GFAP was detected in the brain only in the hippocampus. Transcript and protein were detected in wild-type cervical, thoracic and lumbar spinal cord but not in knock-out mice. Unexpectedly, GFAP was increased in all three spinal regions. Therefore, we proceeded to perform transcriptomic analysis of cortex, hippocampus and spinal cord. Pathways associated with monooxygenase activity, fatty acid ligases and lactate transporters were highly dysregulated in the spinal cord. ConclusionThe existence and relevance of pathology of the spinal cord in Dravet syndrome has received scant attention. Our findings are consistent with some systemic symptoms of Dravet syndrome, with the benefits of treatments which may modulate the astrocyte-neuron lactate shuttle such as Stiripentol and ketogenic dietary regimes, and with the efficacy of intrathecal delivery of therapeutics. Key PointsO_LIDecrease of endogenous Scn1a and NaV1.1 expression in Scn1a-/- mice has a widespread impact on the gene expression profile in the spinal cord. C_LIO_LIIncreased GFAP expression observed in the spinal cord of Scn1a-/- mice. C_LIO_LIDifferentially expressed genes related to monooxygenase activity, fatty acid ligases and lactate transporters in cervical spinal cord of Scn1a-/- mice. C_LI

molecular biology↗