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Duseja, A.

Publications and source records attributed to Duseja, A..

2 recordsLinked to original sources

Green Jackfruit Flour Prevents Metabolic Dysfunction-Associated Steatohepatitis and Progression to Hepatocellular Carcinoma via the AMPK and MAPK Signaling Pathways

Metabolic dysfunction-associated steatotic liver disease (MASLD), encompassing metabolic-dysfunction associated steatotic liver (MAFL) and steatohepatitis (MASH), which further progresses to hepatocellular carcinoma (HCC), is a serious public health concern. Given the paucity of approved therapeutic strategies for this lifestyle disorder, dietary interventions may prove effective. We evaluated how green jackfruit flour (JF) prevents MASH and progression to HCC and its underlying mechanisms. The study utilized two murine models that mimicked human MASLD disease: (i) a diet-induced MASH model; (ii) a MASH-HCC model induced by diet and a very low dose of CCl4. C57Bl/6 mice were fed with chow (CD) or western diet (WD) with normal (NW) or sugar water (SW) for 12 weeks, then randomized to receive either 5 kcal% green jackfruit flour (JF) or an equal volume of placebo flour (PB). The biochemical, histological, and molecular analyses were assessed. JF significantly reduced body weight, liver injury, insulin resistance, and alleviated obesity, steatosis, inflammation, fibrosis, and tumor development in WDSW or WDSW/CCl4 mice compared to placebo groups. Furthermore, JF activated AMPK (AMP-activated protein kinase) and inhibited MAPK (mitogen-activated protein kinase) signaling pathways in MASH and MASH-HCC experimental models, respectively. This was supported by sodium propionate treatment, the primary short-chain fatty acid entering the liver from JFs soluble fiber microbial fermentation, which also regulated AMPK and MAPK signaling in cellular models of MASH and HCC, respectively. Hence, our findings present strong evidence of JFs therapeutic potential in the prevention of MASH and MASH-HCC, warranting further investigation of JFs efficacy as a dietary intervention in clinical trials.

cancer biology↗

Osteoblast cell death triggers a pro-osteogenic inflammatory response regulated by reactive oxygen species and glucocorticoid signaling in zebrafish

In zebrafish, transgenic labeling approaches, robust regenerative responses and excellent in vivo imaging conditions enable precise characterization of immune cell behavior in response to injury. Here, we monitored osteoblast-immune cell interactions in bone, a tissue which is particularly difficult to in vivo image in tetrapod species. Ablation of individual osteoblasts leads to recruitment of neutrophils and macrophages in varying numbers, depending on the extent of the initial insult, and initiates generation of cathepsinK+ osteoclasts from macrophages. Induced osteoblast death triggers the production of pro-inflammatory cytokines and reactive oxygen species, which are needed for successful macrophage recruitment. Excess glucocorticoid signaling as it occurs during the stress response inhibits macrophage recruitment, maximum speed and changes the macrophages phenotype. While osteoblast loss is compensated for within a day by contribution of committed osteoblasts, macrophages continue to populate the region. Their presence is required for osteoblasts to fill the lesion site. Our model enables visualization of homeostatic bone repair after microlesions at single cell resolution and demonstrates a pro-osteogenic function of tissue-resident macrophages in non-mammalian vertebrates. Summary statementLaser-mediated osteoblast ablation induces recruitment of tissue-resident macrophages by a release of reactive oxygen species. The presence of macrophages is required for osteoblasts to repopulate the lesion site and can be modulated by glucocorticoids.

developmental biology↗