bioRxiv Science⌕ Search

Biology subjects

Dasgupta, B.

Publications and source records attributed to Dasgupta, B..

2 recordsLinked to original sources

Cardiomyocyte-intrinsic SLC25A1 regulates cardiac differentiation and mitochondrial function

Cardiac morphogenesis is an intricate process that requires a precise coordination between metabolic and structural maturation, but how these processes are linked remain unclear. In previous work, we identified one candidate underlying this connection: the mitochondrial citrate carrier (SLC25A1), a critical regulator of embryonic heart development. Here, using systemic and cardiomyocyte-specific Slc25a1 deletion in mice together with SLC25A1 knockout (KO) human induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CMs), we demonstrate that SLC25A1 functions cell-autonomously within cardiomyocytes to regulate differentiation, mitochondrial maturation, and ventricular morphogenesis. Transcriptomic analysis of SLC25A1-deficient hearts revealed dysregulation of gene programs regulating cardiomyocyte differentiation and mitochondrial function. Consistent with these changes, loss of SLC25A1 in developing cardiomyocytes impaired mitochondrial function and resulted in defective ventricular wall compaction in vivo. Likewise, SLC25A1 KO hiPSC-CMs exhibited defective cardiomyocyte differentiation, disorganized myofibrils, and immature mitochondrial organization and function in vitro. Together, our findings position SLC25A1 as a cardiomyocyte-intrinsic, cell-autonomous regulator that links mitochondrial citrate export to developmental gene programs, revealing a mitochondrial regulatory axis for cardiomyocyte maturation and cardiac morphogenesis that contributes to congenital heart disease.

developmental biology↗

Integrative Multi-Omics Analysis Identifies Nuclear Factor I as a Key Driver of Dysregulated Purine Metabolism in DIPG

Diffuse intrinsic pontine glioma (DIPG) is a devastating brainstem cancer in children, with a median survival of under one year and limited treatment options. Over 80% of DIPGs possess a H3K27M mutation. To identify metabolic vulnerabilities linked to this mutation, we utilized a multi-omics approach in H3K27M-expressing cells, patient-derived cell lines, and mouse models. We show that by reprogramming chromatin landscape the mutation aberrantly induces NFI transcriptional activity, leading to misregulated purine metabolism. The mutation amplifies purine biosynthesis and degradation via the enzymes ATIC and PNP, respectively. Unregulated purine degradation relieves the negative feedback of purines on their own synthesis allowing continuous synthesis, use and degradation making DIPGs reliant on purine biosynthesis. Targeting ATIC reduced tumor progression and improved survival in mice. We propose ATIC as a potential novel target in DIPG.

cancer biology↗