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Deka, A.

Publications and source records attributed to Deka, A..

2 recordsLinked to original sources

A hepatocyte-specific transcriptional program driven by Rela and Stat3 exacerbates experimental colitis in mice by modulating bile synthesis

Hepatic factors secreted by the liver promote homeostasis and are pivotal for maintaining the liver-gut axis. Bile acid metabolism is one such example wherein, bile acid synthesis occurs in the liver and its biotransformation happens in the intestine. Dysfunctional interactions between the liver and the intestine stimulate varied pathological outcomes through its bidirectional portal communication. Indeed, aberrant bile acid metabolism has been reported in inflammatory bowel disease (IBD). However, the molecular mechanisms underlying these crosstalks that perpetuate intestinal permeability and inflammation remain obscure. Here, we identify a novel hepatic gene program regulated by Rela and Stat3 that accentuates the inflammation in an acute experimental colitis model. Hepatocyte-specific ablation of Rela and Stat3 reduces the levels of primary bile acids in both the liver and the gut and shows a restricted colitogenic phenotype. On supplementation of chenodeoxycholic acid (CDCA), knock-out mice exhibit enhanced colitis-induced alterations. This study provides persuasive evidence for the development of multi-organ strategies for treating IBD and identifies a hepatocyte-specific rela-stat3 network as a promising therapeutic target.

immunology↗

An epithelial Nfkb2 pathway exacerbates intestinal inflammation by supplementing latent RelA dimers to the canonical NF-κB module

Aberrant inflammation associated with human ailments, including inflammatory bowel disease (IBD), is typically fuelled by the inordinate activity of RelA/NF-{kappa}B transcription factors. As such, the canonical NF-{kappa}B module mediates controlled nuclear activation of RelA dimers from the latent cytoplasmic complexes. What provokes pathological RelA activity in the colitogenic gut remains unclear. The noncanonical NF-{kappa}B pathway promotes immune organogenesis involving Nfkb2 gene products. Because NF-{kappa}B pathways are intertwined, we asked if noncanonical signaling aggravated inflammatory RelA activity. Our investigation revealed frequent engagement of the noncanonical pathway in human IBD. In a mouse model, an Nfkb2 function exacerbated gut inflammation by amplifying the epithelial RelA activity induced upon intestinal injury. Our mechanistic studies clarified that cell-autonomous Nfkb2 signaling supplemented latent NF-{kappa}B dimers leading to hyperactive canonical RelA response in the inflamed colon. In sum, regulation of latent NF-{kappa}B dimers links noncanonical signaling to RelA-driven inflammatory pathologies and may provide for therapeutic targets. In briefNoncanonical NF-{kappa}B signals in intestinal epithelial cells supplement latent RelA dimers that, in turn, aggravated canonical NF-{kappa}B response in the colitogenic gut exacerbating intestinal inflammation. HighlightsO_LIHuman IBD involves the frequent engagement of the noncanonical NF-{kappa}B pathway. C_LIO_LIMice deficient in the noncanonical signal transducer Nfkb2 are resistant to experimental colitis. C_LIO_LINoncanonical NF-{kappa}B signaling supplements latent RelA NF-{kappa}B dimers. C_LIO_LINoncanonical NF-{kappa}B signaling amplifies canonical NF-{kappa}B response to TLR ligands. C_LI

immunology↗