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Massoz, L.

Publications and source records attributed to Massoz, L..

2 recordsLinked to original sources

Negative cell cycle regulation by Calcineurin is necessary for proper beta cell regeneration in zebrafish

Stimulation of pancreatic beta cell regeneration could be a therapeutic lead to treat diabetes. Unlike humans, the zebrafish can efficiently regenerate beta cells, notably from ductal pancreatic progenitors. To gain insight into the molecular pathways involved in this process, we established the transcriptomic profile of the ductal cells after beta cell ablation in the adult zebrafish. These data highlighted the protein phosphatase calcineurin as a new potential modulator of beta cell regeneration. We showed that calcineurin overexpression abolished the regenerative response, leading to glycemia dysregulation. On the opposite, calcineurin inhibition increased ductal cell proliferation and subsequent beta cell regeneration. Interestingly, the enhanced proliferation of the progenitors was paradoxically coupled with their exhaustion. This suggests that the proliferating progenitors are next entering in differentiation. Calcineurin appears as a guardian which prevents an excessive progenitor proliferation to preserve the pool of progenitors. Altogether, our findings reveal calcineurin as a key player in the balance between proliferation and differentiation to enable a proper beta cell regeneration.

developmental biology↗

A δ-cell subpopulation with a pro-β-cell identity confers efficient age-independent recovery in a zebrafish model of diabetes

Restoring damaged {beta}-cells in diabetic patients by harnessing the plasticity of other pancreatic cells raises the questions of the efficiency of the process and of the functionality of the new Insulin-expressing cells. To overcome the weak regenerative capacity of mammals, we used regeneration-prone zebrafish to study {beta}-cells arising following destruction. We show that most new insulin cells differ from the original {beta}-cells as they are Somatostatin+ Insulin+, but are nevertheless functional and normalize glycemia. These bihormonal cells are transcriptionally close to a subset of {delta}-cells in normal islets characterized by the expression of somatostatin 1.1 (sst1.1), the {beta}-cell genes pdx1, slc2a2 and gck, and the machinery for glucose-induced Insulin secretion. {beta}-cell destruction triggers massive sst1.1 {delta}-cell conversion to bihormonal cells. Our work shows that their pro- {beta}-cell identity predisposes this zebrafish {delta}-cell subpopulation to efficient age-independent neogenesis of Insulin-producing cells and provides clues to restoring functional {beta}-cells in mammalian diabetes models.

cell biology↗