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Denning, T. L.

Publications and source records attributed to Denning, T. L..

2 recordsLinked to original sources

IL-36/IL-36R Signaling Promotes CD4+ T Cell-Dependent Colitis via Pro-Inflammatory Cytokine Production

Inflammatory bowel disease (IBD) is a multifactorial, chronic disease that affects approximately 1.5 million people in the United States [1]. It presents with inflammation of the intestine with unknown etiology and its two main forms are Crohns disease (CD) and ulcerative colitis (UC). Several important factors are implicated in the pathogenesis of IBD, one being dysregulation of the immune system resulting in the accumulation and stimulation of innate and adaptive immune cells and subsequent release of soluble factors, including pro-inflammatory cytokines. One of these cytokines is a member of the IL-36 cytokine family, IL-36{gamma}, which is overexpressed in human IBD and experimental mouse models of colitis. In this study, we explored the role of IL-36{gamma} in promoting CD4+ T cell activation and cytokine secretion. We found that IL-36{gamma} stimulation of naive CD4+ T cells significantly induced IFN{gamma} expression in vitro and was associated with augmented intestinal inflammation in vivo using naive CD4+ cell transfer model of colitis. Using IFN{gamma}-/- CD4+ cells, we observed a dramatic decrease in the ability of TNF production and delayed colitis. This data not only suggests that IL-36{gamma} is a master regulator of a pro-inflammatory cytokine network involving IFN{gamma} and TNF, but also highlights the importance of targeting IL-36{gamma} and IFN{gamma} as therapeutic approaches. Our studies have broad implications in relation to targeting specific cytokines in human IBD.

immunology↗

Methyltransferase SMYD5 Exaggerates IBD by Downregulating Mitochondrial Functions via Post-translational Control of PGC-1α Stability

Background and AimsThe expression and role of methyltransferase SET and MYND domain-containing protein 5 (SMYD5) in inflammatory bowel diseases (IBD) is completely unknown. Here, we investigated the role and the underlying mechanism of epithelial SMYD5 in IBD pathogenesis and progression. MethodsThe expression and subcellular localization of SMYD5 and peroxisome proliferator-activated receptor gamma coactivator-1 (PGC-1) were examined by Western blot analysis, immunofluorescence staining, and immunohistochemistry in intestinal epithelial cells (IECs) and in colon tissues from human IBD patients and mice with experimental colitis. Mice with Smyd5 conditional knockout in IECs and littermate controls were subjected to DSS-induced experimental colitis and the disease severity and inflammation were assessed. SMYD5-regulated mitochondrial biogenesis was examined by RT-qPCR and transmission electron microscopy and mitochondrial oxygen consumption rate was measured in a Seahorse Analyzer system. The interaction between SMYD5 and PGC-1 was determined by co-immunoprecipitation assay. PGC-1 degradation and turnover (half-life) were analyzed by cycloheximide chase assay. SMYD5-mediated PGC-1 methylation was measured via in vitro methylation followed by mass spectrometry to identify the specific lysine residues that were methylated. ResultsUp-regulated SMYD5 and down-regulated PGC-1 were observed in IECs from IBD patients and mice with experimental colitis. However, Smyd5 depletion in IECs protected mice from DSS-induced colitis. SMYD5 was critically involved in regulating mitochondrial biology such as mitochondrial biogenesis, respiration, and apoptosis. Mechanistically, SMYD5 regulated mitochondrial functions in a PGC-1 dependent manner. Further, SMYD5 mediated lysine methylation of PGC-1 and facilitated its ubiquitination and proteasomal degradation. ConclusionSMYD5 attenuates mitochondrial functions in IECs and promotes IBD progression by enhancing the proteasome-mediated degradation of PGC-1 protein in methylation-dependent manner. Strategies to decrease SMYD5 expression and/or increase PGC-1 expression in IECs might be a promising therapeutic approach to treat patients with IBD.

cell biology↗