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Biology subjects

Deshar, G.

Publications and source records attributed to Deshar, G..

2 recordsLinked to original sources

Primary cilia coordinate c-KIT signaling induced proliferation in alpha cells

Circulating glucagon levels are elevated in patients with diabetes and obesity and contribute to hyperglycemia. The mechanisms underlying hyperglucagonemia remain poorly understood, but expansion of pancreatic -cell mass is thought to play an important role. Primary cilia are sensory organelles that act as signaling hubs, for pathways controlling cell differentiation, proliferation, and function, yet their contribution to -cell biology remains poorly defined. Here we investigated the role of primary cilia in the regulation of -cell proliferation. To this end we generated the first -cell primary cilia proteome identifying 167 cilia-enriched proteins. Among these, we identified and validated the proto-oncogene receptor tyrosine kinase, c-KIT, as a novel ciliary receptor in -cells. We further show that c-KIT signaling depends on intact primary cilia and that stimulation of isolated mouse islets with its endogenous ligand, stem cell factor (SCF), promotes -cell proliferation. In human pancreatic islets KITLG mRNA expression, but not KIT mRNA expression, correlated positively with donor BMI, suggesting that increased ligand availability drives c-KIT signaling in obesity. Together, our findings identify the primary cilium as a signaling platform c-KIT in cells and reveal a ciliary axis that may drive -cell expansion and hyperglucagonemia in obesity and diabetes.

physiology↗

Glucose derived redox equivalents preserve PKA activity and glucagon secretion during hypoglycaemia

The release of glucagon from pancreatic alpha cells is a core component of hypoglycaemic counter regulation. Several mechanisms regulate glucagon release including paracrine control by neighbouring cell types, and changes in extracellular glucose. While the inhibitory effect of glucose on glucagon secretion is well established, the exact way in which glucose metabolism contributes to alpha cell function remains unclear. Here, we use live-cell imaging of the redox potential in alpha cells within intact islets to investigate whether non-mitochondrial glucose metabolism contributes to the potentiation of glucagon secretion at low glucose. Our findings show that increased glucose metabolism through the pentose phosphate pathway elevates the cytosolic redox potential in alpha cells. Using a combination of antioxidant treatment and pre-incubation in 5 mM glucose, we find that the cytosolic redox potential affects PKA activity in alpha cells and that changes in whole body redox state affects the counterregulatory response in mice. These findings indicate that prior glucose-driven redox potential charging is essential for maintaining glucagon secretion at low glucose.

physiology↗