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Makhmutova, M.

Publications and source records attributed to Makhmutova, M..

2 recordsLinked to original sources

Pericyte dysfunction and impaired vasomotion are hallmarks of islets during the pathogenesis of type 1 diabetes

Pancreatic islets are endocrine organs that depend on their microvasculature to function properly. Along with endothelial cells, pericytes comprise the islet microvascular network. These mural cells are crucial for microvascular stability and function, but it is not known if/how they are affected during the development of type 1 diabetes (T1D). Here we investigated islet pericyte density, phenotype and function using living pancreas slices from donors without diabetes, donors with a single T1D-associated autoantibody (Aab+; all GADA+) and recent onset T1D cases. Our data show that islet pericyte and capillary responses to vasoactive stimuli are impaired early on in T1D. Microvascular dysfunction is associated with a switch in the phenotype of islet pericytes towards pro-fibrotic myofibroblasts. Using publicly available RNAseq data, we further found that transcriptional alterations related to endothelin-1 signaling, vascular and ECM remodeling are hallmarks of single Aab+ donor pancreata. Our data show that islet pericyte/microvascular dysfunction is present at early stages of islet autoimmunity. HighlightsO_LIChanges in islet pericyte coverage and phenotype occur during T1D progression. C_LIO_LIVascular responses to vasoactive stimuli are impaired in islets from Aab+ and T1D donors. C_LIO_LIEndothelin-1 action and receptor expression are altered in vascular cells from Aab+ and T1D donors. C_LIO_LIStrong vascular remodeling occurs in the pancreas of Aab+ and T1D donors. C_LI

physiology↗

PANCREATIC ISLETS COMMUNICATE WITH THE BRAIN VIA VAGAL SENSORY NEURONS

Depleting visceral sensory nerves affects pancreatic islet function, glucose metabolism and diabetes onset, but how islet endocrine cells interact with sensory neurons has not been studied. Here we show that the pancreatic islet is innervated by vagal sensory axons expressing substance P, calcitonin-gene related peptide, and serotonin receptor 5HT3R. Vagal neurons projecting to the pancreas terminate in the commissural nucleus of the solitary tract. These neurons respond to chemical but not mechanical stimulation of the pancreas. By recording activity from nodose neurons in vivo and from sensory axons in living pancreas slices, we show that sensory nerves respond to serotonin secreted from stimulated beta cells. Serotonin is co-released with insulin and therefore conveys information about the secretory state of beta cells via vagal afferent nerves. Our study thus establishes that pancreatic islets communicate with the brain using the neural route and identifies serotonin signaling as a peripheral transduction mechanism.

neuroscience↗