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Candelario-Martinez, A.

Publications and source records attributed to Candelario-Martinez, A..

2 recordsLinked to original sources

TIF1γ regulates stability of T regulatory cells during inflammation

T regulatory cells are a suppressor population critical to control inflammation and maintain tissue homeostasis. The TGF-{beta} pathway is a fundamental signal for T regulatory cell differentiation, yet the molecular determinants of how TGF-{beta} signals regulate all these processes are not completely understood. TIF1{gamma} was demonstrated to promote a noncanonical TGF-{beta}/Smad pathway in HSC, however the role of TIF1{gamma} in Treg function has been largely ignored. Here we showed that TIF1{gamma} deficient Tregs lose stability and acquire an effector phenotype in the presence of an inflammatory stimuli or upon activation. TIF1{gamma} deficient T regs gain a Th1-like Treg phenotype or become pro-inflammatory exTregs, by losing Foxp3 expression and acquiring IFN{gamma} expression in an autoimmune model. Loss of TIF1{gamma} in Tregs was cell-intrinsic and was also accompanied by increased proliferation and enhanced glycolytic capacity upon activation. Additionally, we demonstrated that in the absence of TIF1{gamma}, there was an increased methylation status in the CNS2 enhancer region of the Foxp3 locus, further suggesting increased susceptibility for loss of Foxp3 expression. Mechanistically, TGF-{beta} was in part responsible to inhibit the Th1-like bias a Treg has in the absence of TIF1{gamma}, however, the proliferative phenotype observed in these cells was mostly independent of TGF-{beta} signaling. Finally, we identified the beta-catenin pathway as the molecular mechanism driving both TIF1{gamma}-dependent Treg stability and proliferation upon inflammation. Altogether, our data demonstrated that TIF1{gamma} is required for the maintenance of a suppressor phenotype and stability of Treg lymphocytes during inflammatory conditions in vivo and represents a new modulatory pathway to manipulate Treg cells for therapeutic purposes.

immunology↗

Paneth and Paneth-like cells undergoing necroptosis fuel intestinal epithelial cell proliferation following IFN-γ stimulation.

The quality of life in patients with inflammatory bowel diseases (IBD) is strongly impaired. Alterations of intestinal epithelial homeostasis contribute to the development and establishment of IBD. Intestinal Paneth and Paneth-like cells produce and secrete luminal proteins sustaining epithelial homeostasis. Here we show that IFN-{gamma} stimulates Paneth and Paneth-like cells degranulation that triggers the proliferation of intestinal epithelial cells (IEC) in a Wnt/{beta}-catenin independent manner. Degranulation in Paneth and Paneth-like cells was mTORC1 and necroptosis dependent. Remarkably, lack of IFN-{gamma}, inhibition of mTORC1, or impeding necroptosis reduces IEC proliferation cytokine-mediated. Our findings identify a new role for IFN-{gamma} in stimulating IEC proliferation through inducing degranulation of Paneth and Paneth-like cells which is mTORC1 and necroptosis- dependent. In a mouse model of colitis, mTORC1 activation and necroptosis regulate Paneth and Paneth-like cell secretion. Furthermore, the colitogenic environment triggers PC metaplasia in the distal region of the large intestine to simulate cell proliferation. HighlightsIFN-{gamma} stimulates proliferation, {beta}-catenin independent. IFN-{gamma} enhances mitochondrial activity and proliferation IFN-{gamma} regulates PC biogenesis. mTORC1-dependent necroptosis mediates secretion in Paneth and Paneth-like cells.

physiology↗