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Choudhury, J.

Publications and source records attributed to Choudhury, J..

5 recordsLinked to original sources

Cross-trait clustering of sub-threshold sleep genetic signals identifies EGR2 as a conserved regulator of sleep

Idiopathic hypersomnia (IH) is a highly heritable sleep disorder characterized by excessive daytime sleepiness, yet few genetic pathways contributing to hypersomnolence have been identified. To expand genetic discovery beyond the limited number of genome-wide significant loci associated with sleepiness-related traits, we applied multi-trait clustering to sleep-associated genetic variation that did not reach conventional significance thresholds. Integration with our cell-type-specific variant-to-gene mapping prioritized candidate effector genes for cross-species functional screening. Among the strongest candidates was EGR2, which emerged as a distal effector gene at the ADO-EGR2 locus in neurons. Neuronal knockdown of the Drosophila EGR2 ortholog stripe increased sleep duration and sleep consolidation, while mutation of zebrafish egr2 orthologs similarly increased sleep. Together, these findings demonstrate that sleep-regulatory pathways can be identified from genetic signals below conventional significance thresholds and establish EGR2 as a conserved regulator of sleep across species.

neuroscience↗

An epigenomic investigation of atrial fibrillation in a matched left and right atrial human cohort

As the most prevalent cardiac arrythmia, atrial fibrillation is an important contributor to cardiovascular morbidity and mortality. Human population findings increasingly support its complex genetic architecture, with most genetic association signals for atrial fibrillation found in the non-coding genome. In this study, we integrated genome-wide histone modification, gene expression and DNA methylation levels in a paired left and right atrial cohort comprising permanent atrial fibrillation patients and sinus rhythm controls. First, we first identified epigenomic regions enriched in histone H3 lysine 27 acetylation (H3K27ac) across left and right atria from patients and controls, and associated them with differentially expressed genes to derive a set of dysregulated candidate loci - including NPPB and SCX. Second, by incorporating an independent replication cohort, we were able to validate gene expression and epigenomic differences for a subset of these candidate loci. Third, we profiled base-resolution DNA methylation levels and identified differentially-methylated regions (DMRs) between atrial fibrillation and sinus rhythm samples. Integration of these data with histone modification levels and gene expression allowed us to propose epigenetic mechanisms underlying transcriptomic and epigenomic changes across dysregulated loci, such as disruption of transcription factor binding by DNA methylation at the LRRC4B locus. The data and analyses we report constitute a systematic investigation of gene regulatory alterations across the left and right atria in permanent atrial fibrillation.

genomics↗

Nutrient excess remodels islet autonomic innervation via pancreatic schwann cells

Nutrient excess results in short- and long-term adaptations in the structure and function of metabolic organs, such as pancreatic islets. Pancreatic innervation contributes to islet architecture and function in many species, including humans, but little is known about its adaptation to over-nutrition. Here, we use 3D imaging to show that short-term high fat diet rapidly remodels islet sympathetic innervation while long-term high fat diet results in islet-specific cholinergic neuropathy. Using highly targeted, organ- and circuit-specific approaches, we demonstrate that remodeling of pancreatic innervation contributes to impaired glycemic control with short- and long-term nutrient excess. Counteracting the nutrient-induced changes in sympathetic and parasympathetic inputs to the pancreas using neuromodulation and repurposed FDA-approved approaches, we can significantly improve glycemic control even with long-term high fat diet. Finally, we identify islet Schwann cells as a source of the neurotrophic factor, S100b, contributing to rapid sympathetic hyperinnervation with short-term overnutrition. Our findings reveal novel adaptations in islet innervation contributing to nutrition-mediated metabolic dysfunction that can be ameliorated by targeting pancreatic neural circuits.

physiology↗

Biophysical Basis of Paracellular Barrier Modulation by a Pan-Claudin-Binding Molecule

Claudins are a 27-member protein family that form and fortify specialized cell contacts in endothelium and epithelium called tight junctions. Tight junctions restrict paracellular transport across tissues by forming molecular barriers between cells. Claudin-binding molecules thus hold promise for modulating tight junction permeability to deliver drugs or as therapeutics to treat tight junction-linked disease. The development of claudin-binding molecules, however, is hindered by their intractability and small targetable surfaces. Here, we determine that a synthetic antibody fragment (sFab) we developed binds directly to 10 claudin subtypes with nanomolar affinity by targeting claudins paracellular-exposed surface. Application of this sFab to cells that model intestinal epithelium show that it opens the paracellular barrier comparable to a known, but application limited, tight junction modulator. This novel pan-claudin-binding molecule can probe claudin or tight junction structure and holds potential as a broad modulator of tight junction permeability for basic or translational applications.

biophysics↗

Tubules, rods and spirals: diverse modes of SepF-FtsZ assembling

Z-ring formation by FtsZ, the master assembler of divisome, is a key step in bacterial cell division. Both formation and membrane anchoring of the Z-ring requires assistance of a number of Z-ring binding proteins, such as FtsA, EzrA, SepF, SepH and ZipA. SepF participates in bundling and membrane anchoring of FtsZ in gram-positive bacteria. We report in vitro biophysical studies of the interactions between FtsZ and cytoplasmic component of cognate SepF from three different bacteria: Mycobacterium tuberculosis, Staphylococcus aureus and Enterococcus gallinarum. While the cytosolic domain of SepF from M. tuberculosis is a dimer, those from S. aureus and E. gallinarum polymerize to form ring-like structures. Mycobacterial SepF helps in bundling of FtsZ filaments to form thick filaments and large spirals. On the other hand, ring-forming SepF from the Firmicutes bundle FtsZ into tubules.

biophysics↗