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Biology subjects

Sun, O.

Publications and source records attributed to Sun, O..

3 recordsLinked to original sources

Phosphodiesterase type 1 regulates adenosine 2A receptor-associated cAMP signaling at the plasma membrane to increase myocardial contractility

BACKGROUNDPhosphodiesterase type 1 (PDE1) inhibition exerts inodilatory effects in pre-clinical models and human heart failure patients with reduced ejection fraction (HFrEF). PDE1 hydrolyzes cyclic nucleotide cAMP in a soluble but not microsomal fraction of the human myocardium. PDE1 may exert domain-specific effects, but the mechanism whereby PDE1 compartmentalization induces an inotropic change remains unknown. We sought to elucidate PDE1 regulation of cAMP and contractility. METHODSPharmacologic modulators of PDEs or G-protein coupled receptors (GPCRs) were used to study PDE1 signaling mechanisms in healthy and failing guinea pig hearts. Tissue fractionation examined the localization of different PDE types. Live cell imaging experiments assessed cytosolic and sarcolemmal membrane cAMP level ([cAMP]) and protein kinase A (PKA) activity changes in cells transduced with Forster resonance energy transfer (FRET) biosensors. Sarcomere length and intracellular calcium changes monitored contractile changes in electrically paced cells. Coronary flow and left ventricular (LV) developed pressure were measured in ex vivo Langendorff perfusion heart studies. RESULTSPDE1 isoforms were found not only in the soluble, but also in the microsomal fractions of the guinea pig heart. PDE1 hydrolysis of cAMP was greater at the sarcolemma compared to the cytosol. PDE1 specifically regulated a pool of cAMP associated with the Gs protein coupled receptor adenosine 2A receptor (A2AR) at the sarcolemma, without activating PKA. A2AR/PDE1 regulation induced positive inotropic and lusitropic changes in healthy and failing guinea pig cardiomyocytes and in the myocardium ex vivo. CONCLUSIONSPDE1 is the major regulator of cAMP pools generated by A2AR activation at the sarcolemma. Functionally, this regulation induces inotropic and lusitropic effects in cardiomyocytes and at the whole organ level. Thus, PDE1 is compartmentalized at the membrane with A2AR, and this regulation determines cardiomyocyte contractility in healthy and failing hearts.

physiology↗

Glycerol-3-phosphate activates ChREBP, FGF21 transcription and lipogenesis in Citrin Deficiency

Citrin Deficiency (CD) is caused by inactivation of SLC25A13, a mitochondrial membrane protein required to move electrons from cytosolic NADH to the mitochondrial matrix in hepatocytes. People with CD do not like sweets. We discovered that SLC25A13 loss causes accumulation of glycerol-3-phosphate (G3P), which activates carbohydrate response element binding protein (ChREBP) to transcribe FGF21, which acts in the brain to restrain intake of sweets and alcohol, and to transcribe key genes of de novo lipogenesis. Mouse and human data establish G3P-ChREBP as a new mechanistic component of the Randle Cycle that contributes to metabolic dysfunction-associated steatotic liver disease (MASLD) and forms part of a system that communicates metabolic states from liver to brain in a manner that alters food and alcohol choices. The data provide a framework for understanding FGF21 induction in varied conditions, suggest ways to develop FGF21-inducing drugs, and drug candidates for both lean MASLD and support of urea cycle function in CD.

molecular biology↗

Multi-omics analysis of long-term cultured human islets

Beta-cell dysfunction in pancreatic islets, characterized as either the loss of beta-cell mass or the resistance of beta-cell to glucose, is the leading cause of progression to diabetes. Islet transplantation became a promising approach to replenish functional beta-cell mass. However, not much known about changes in islets used for transplantation after isolation. We have subjected human islets into long-term in vitro culture (LTC) and characterized those survived islets. While most of the dysregulated genes were downregulated during LTC, specific groups of mRNA or miRNA were upregulated, and they are involved in specific pathways. In general, alpha-cells and beta-cells of LTC-islets have elevated expressions of MAFB and MAFA genes, respectively. We also found that exocrine cells were eliminated faster than endocrine cells, and beta-cells were lost at a higher rate than alpha-cells. Interestingly, one specific group of cells that have characteristics of immature alpha-cells or beta-cells, were enriched in LTC-islets, revealing the possibility of transdifferentiation of alpha-cells to beta-cells, or dedifferentiation of beta-cells to alpha-cells, under in vitro culture. Our results suggest that there are intrinsic cellular and molecular mechanisms in pancreatic cells that are associated with their maturity and correlated with their survival ability under unfavorable living conditions.

molecular biology↗