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Biomedical subjects

Sanjay M Sisodiya

Publications and source records attributed to Sanjay M Sisodiya.

2 recordsLinked to original sources

Multiomic approaches identify a rare CCG repeat expansion in BCLAF3 in neurodevelopmental disorders.

BACKGROUND: Tandem repeat expansions have been implicated in various neurological conditions. Here, we present a novel hypermethylated CCG repeat expansion on Xp22 in the 5'UTR of BCLAF3 in males with neurodevelopmental disorders. METHODS: We used patient-derived fibroblasts and neuronal models from a family with BCLAF3 repeat expansions to generate multiomic data and investigate downstream molecular consequences of the repeat expansion. To identify additional affected individuals with BCLAF3 repeat expansions, we screened methylation arrays (n = 12,375) and short-read genomes (n = 15,963) from probands with neurodevelopmental presentations. We also characterized BCLAF3 repeat expansions in the general population using long-read sequencing data (n = 793) and population-level short-read sequencing data (n = 410,076). RESULTS: Long-read sequencing validated hypermethylation of expanded repeats. Patient-derived cells showed repressed BCLAF3 RNA and protein expression. We show that the BCLAF3 CCG repeat expansion constitutes a previously uncharacterized fragile site (FRAXG) that shifts the surrounding chromatin compartment from open euchromatin to closed heterochromatin. Using our multiomic screening approaches, we identified three additional unrelated males and one related male cousin with long-read sequencing validated (n = 2) or short-read sequencing predicted (n = 2) repeat expansions. In one family, the BCLAF3 repeats segregate with more severe phenotypes than expected for the primary diagnoses. Long-read sequencing in three carrier mothers showed skewed X-inactivation against the repeat expansion, highlighting the potential deleterious effect of an allele with an expansion. Expansions were absent in long-read sequencing data from control populations. Assessment of the BCLAF3 repeat expansion in the UK Biobank indicates that it may be ~ 20X rarer than FMR1 repeat expansions. CONCLUSIONS: CCG repeat expansions in the 5'UTR of BCLAF3 likely constitute a novel genetic etiology associated with X-linked neurodevelopmental phenotypes in males. Future work will be essential to delineate the phenotypic spectrum and determine a disease pathomechanism.

BCLAF3

TMS-EEG in postictal psychosis of epilepsy.

BACKGROUND: Postictal psychosis (PIP) is a poorly understood complication affecting 2 % of individuals with epilepsy. Genomic and neuroimaging studies suggest parallels with schizophrenia. OBJECTIVES: To determine whether Transcranial Magnetic Stimulation coupled with Electroencephalography (TMS-EEG), can reveal schizophrenia-like changes in PIP, especially in Natural Frequency (NF), gamma band Event-Related Spectral Perturbation (ERSP), the N100 peak, and global mean field power (GMFP). METHODS: We applied TMS-EEG targeting the non-dominant hemisphere premotor area in people with focal epilepsy (PWE) with a history of PIP (n = 7) and PWE without any history of psychosis (n = 14). Two-tailed t-tests were applied to TMS-EEG metrics previously studied in schizophrenia to look for differences between the groups, with subgroup analyses excluding participants using benzodiazepines. RESULTS: Demographic and clinical characteristics were similar across the two groups. No significant differences were seen in NF (p = 0.98). We observed a delayed N100 peak latency in the PIP group when excluding those with regular benzodiazepine use (p = 0.05) and increased global mean field power during the 400-600 ms phase of the TEP (p = 0.02). Mean ERSP within the gamma band was lower in the PIP group, though this did not reach statistical significance (p = 0.08). CONCLUSION: This is the first study to apply TMS-EEG in individuals with PIP, demonstrating feasibility and providing methodological insights for future studies. Preliminary findings, including increased GMFP and delayed N100 latency in PIP, suggest possible disruptions in cortical excitability similar to schizophrenia, warranting further investigation.

Humans