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Biology subjects

George, R. M.

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

2 recordsLinked to original sources

PV interneuron-targeted CRISPRa rescue of SCN1A haploinsufficiency in Dravet syndrome

Dravet syndrome is a severe epileptic encephalopathy caused by SCN1A haploinsufficiency, which leads to reduced NaV1.1 expression in parvalbumin (PV)-expressing interneurons and disrupted excitatory-inhibitory balance in the brain. We developed an AAV-based CRISPR activation system (AAV9-E2-dCas9-VP64) to selectively upregulate SCN1A from its endogenous locus in PV interneurons. An in vitro saturating guide RNA (gRNA) screen across the human SCN1A promoter identified a lead guide with robust and highly specific engagement of the SCN1A locus. This lead gRNA was validated in human Dravet syndrome model GABAergic neurons, where dose-dependent and specific SCN1A upregulation was observed. Intracerebroventricular (ICV) administration in a mouse model of Dravet syndrome produced dose-dependent improvement in survival as well as reduced susceptibility to hyperthermia-induced seizures and increased NaV1.1 protein expression, with maintained PV interneuron selectivity and minimal off-target expression. In a study in juvenile cynomolgus macaques, MRI-guided ICV administration of the vector was well tolerated, achieved broad cortical biodistribution, and maintained strong detargeting of peripheral tissues, with substantially lower peripheral dCas9 expression relative to the brain. These results support PV interneuron-selective SCN1A gene modulation via CRISPR activation as a promising therapeutic strategy for Dravet syndrome. AAV9-E2-dCas9-VP64 (RT101) is currently in preclinical development and is being advanced toward evaluation in the clinic.

neuroscience↗

Single cell evaluation of endocardial HAND2 gene regulatory networks reveals critical HAND2 dependent pathways impacting cardiac morphogenesis.

The transcription factor HAND2 plays critical roles during cardiogenesis. Hand2 endocardial deletion (H2CKO) results in tricuspid atresia or double inlet left ventricle with accompanying intraventricular septum defects, hypo-trabeculated ventricles, and an increased density of coronary lumens. To understand the regulatory mechanisms of these phenotypes, single cell transcriptome analysis of E11.5 H2CKO hearts was performed revealing a number of disrupted endocardial regulatory pathways. Utilizing HAND2 DNA occupancy data, we identify several HAND2-dependent enhancers, including two endothelial enhancers for the sheer-stress master regulator, KLF2. A 1.8kb enhancer located 50kb upstream of the Klf2 transcriptional start site imparts specific endothelial/endocardial expression within the vasculature and endocardium. This enhancer is HAND2-dependent for ventricular endocardium expression but HAND2-independent for Klf2 vascular and valve expression. Deletion of this Klf2 enhancer reveals reduced Klf2 expression within ventricular endocardium. These data reveal that HAND2 functions within endocardial gene regulatory networks including sheer stress response.

developmental biology↗