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β-cell dedifferentiation is associated with epithelial-mesenchymal transition triggered by miR-7-mediated repression of mSwi/Snf complex

Mak, T.; von Ohlen, Y.; Wang, Y.-F.; Kane, E.; Pereira, P. E.; Jurgaityte, K.; Chabosseau, P.; Distaso, W.; Salem, V.; Tomas, A.; Stoffel, M.; Marchetti, P.; Shapiro, J.; Rutter, G. A.; Latreille, M.

2019-10-01 genomics
10.1101/789461 bioRxiv
Show abstract

{beta}-cell dedifferentiation has been revealed as a pathological mechanism underlying pancreatic dysfunction in diabetes. However, little is known on the genetic and epigenetic changes linked with the dedifferentiation of {beta}-cells. We now report that {beta}-cell dedifferentiation is associated with epithelial to mesenchymal transition (EMT) triggered by miR-7-mediated repression of Smarca4/Brg1 expression, a catalytic subunit of the mSwi/Snf chromatin remodeling complexes essential for {beta}-cell transcription factors ({beta}-TFs) activity. miR-7-mediated repression of Brg1 expression in diabetes causes an overall compaction of chromatin structure preventing {beta}-TFs from accessing and transactivating genes maintaining the functional and epithelial identity of {beta}-cells. Concomitantly, loss of {beta}-cell identity impairs the ability of {beta}-TFs Pdx1, Nkx6-1, Neurod1 to repress non-{beta}-cell genes enriched selectively in mesenchymal cells leading to EMT, change in islet microenvironment, and fibrosis. Remarkably, anti-EMT agents normalized glucose tolerance of diabetic mice, thus revealing mesenchymal reprogramming of {beta}-cells as a novel therapeutic target in diabetes. This study sheds light on the genetic signature of dedifferentiated {beta}-cells and highlights how loss of mSwi/Snf activity in diabetes initiating a step-wise remodeling of epigenetic landscapes of {beta}-cells leading to the induction of an EMT process reminiscent of a response to tissue injury.

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