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Biology subjects

Kumar, D. P.

Publications and source records attributed to Kumar, D. P..

5 recordsLinked to original sources

Silencing of Hepatic AATF Ameliorates Metabolic Dysfunction Associated Steatohepatitis by Promoting Fatty Acid β-Oxidation in Experimental models

Background & aimsMetabolic dysfunction-associated steatohepatitis (MASH) is a multifactorial disease driven by complex molecular mechanisms. Identifying key regulators is critical for developing targeted therapies. Here, we demonstrate the impact of the loss of apoptosis antagonizing transcription factor (AATF) on hepatic lipid metabolism and MASH progression. MethodsA preclinical mouse model recapitulating human MASH was established by feeding C57Bl/6 mice either a chow diet (CD) or a western diet with sugar water (WD). Hepatic AATF silencing was achieved by tail vein injection of siAATF delivered by adeno-associated virus 8 (AAV8) with the liver-specific thyroxine-binding globulin (TBG) promoter. In addition to histological, biochemical, and molecular biology evaluations, the mechanistic insights were derived from whole transcriptomics and untargeted metabolomics analyses. ResultsAAV8-mediated specific knockdown of AATF in hepatocytes significantly reduced body weight, liver weight, and insulin resistance in mice fed with western diet (WD). However, no such effects were observed in mice fed with a chow diet (CD). Further analyses showed reduced liver injury, steatosis, and steatohepatitis in WDsiAATF mice. Transcriptomic analysis demonstrated that loss of AATF alleviated cellular stress, inflammation, and fibrosis in WD-fed mice. Moreover, AATF silencing led to alterations in lipid metabolism, notably by decreasing hepatic lipogenesis in the WD mice. Interestingly, untargeted metabolomics revealed an increase in the biosynthesis of glycerophospholipids and beta-oxidation of fatty acids in WDsiAATF mice. ConclusionOur findings reveal a previously unrecognized role of AATF as a central regulator of hepatic lipid metabolism in MASH, acting through the AKT-mTORC1 signaling pathway, and establish its inhibition as a promising therapeutic strategy for metabolic liver disease.

molecular biology↗

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↗

Curcumin Ameliorates AATF-mediated Liver Damage and Inflammation to Cancer in NASH-HCC

In tandem with the expanding obesity pandemic, the prevalence of metabolic dysfunction associated steatohepatitis (MASH, formerly known as NASH)-driven hepatocellular carcinoma (HCC) is predicted to rise globally, creating a significant need for therapeutic interventions. We previously identified the upregulation of apoptosis antagonizing transcription factor (AATF), which is implicated in facilitating the progression from MASH to HCC. The objective of this study was to examine whether the intervention of curcumin could alleviate AATF-mediated MASH, inhibit tumor growth, and elucidate the underlying mechanism. A preclinical murine model mimicking human MASH-HCC was employed, subjecting mice to either a chow diet normal water (CDNW) or western diet sugar water (WDSW) along with very low dose of carbon tetrachloride (CCl4-0.2 l/g, weekly). Mice receiving curcumin (CUR) alongside WDSW/CCl4 exhibited significant improvements, including reduced liver enzymes, dyslipidemia, steatosis, inflammation, and hepatocellular ballooning. Curcumin treatment also suppressed hepatic expression of inflammatory, fibrogenic, and oncogenic markers. Of note, there was a significant reduction in the expression of AATF upon curcumin treatment in WDSW/CCl4 mice and human HCC cells. In contrast, curcumin upregulated Kruppel-like factor 4 (KLF4) in MASH liver and HCC cells, which is known to downregulate sp1 (specificity protein-1) expression. Thus, curcumin treatment effectively inhibited the progression of MASH to HCC by downregulating the expression of AATF via the KLF4-Sp1 signaling pathway. These preclinical findings establish a novel molecular connection between curcumin and AATF in reducing hepatocarcinogenesis, and provide a strong rationale for the development of curcumin as a viable treatment for MASH-HCC in humans.

cancer biology↗

AATF Inhibition Exerts Antiangiogenic Effects AgainstHuman Hepatocellular Carcinoma

Hepatocellular carcinoma (HCC), a highly fatal cancer with a mortality rate proportional to its incidence, continues to pose a global health care challenge. Angiogenesis is a key factor in the growth and metastasis of hepatic tumors and thus a potential therapeutic target in HCC. We previously showed that the apoptosis antagonizing transcription factor (AATF) affects tumor growth and metastasis in a mouse xenograft model. However, the regulatory role of AATF in tumor angiogenesis and its underlying mechanisms in HCC remain unknown. In the current study, we identified high levels of AATF in human HCC tissues compared to adjacent normal liver tissues, and the expression was found to be correlated with the stages and tumor grades of HCC. Inhibition of AATF in human HCC cells showed high levels of pigment epithelium-derived factor (PEDF) compared to controls as a resultant of reduced matric metalloproteinases activity. Conditioned media from AATF knockdown (KD) cells inhibited the proliferation, migration, and invasion of human umbilical vein endothelial cells as well as the vascularization of the chick chorioallantoic membrane. Furthermore, the VEGF-mediated downstream signaling pathway responsible for endothelial cell survival and vascular permeability, cell proliferation, and migration favoring angiogenesis was suppressed by AATF inhibition. Of note, PEDF inhibition by its respective antibody profoundly reversed the anti-angiogenic effect of AATF KD. In conclusion, our study demonstrates that inhibition of AATF suppresses angiogenesis in HCC via PEDF. Thus, a therapeutic strategy based on the inhibition of AATF to disrupt tumor angiogenesis may be a promising approach for HCC treatment.

cancer biology↗

Tecomella undulata Improves Insulin Sensitivity by Attenuating Inflammation and Oxidative Stress in Experimental NASH

Background and AimThe pathophysiology of NASH is complex owing to its diverse pathological drivers, and until recently, there were no approved drugs for this disease. Tecomella undulata is a popular herbal medicine used to treat hepatosplenomegaly, hepatitis, and obesity. However, the potential role of Tecomella undulata in NASH has not yet been scientifically investigated. Experimental ProcedureMice fed with chow diet and normal water (CDNW) or western diet and sugar water (WDSW) for 12 weeks were randomized to receive vehicle control, Saroglitazar, or Tecomella undulata for an additional 12 weeks. Insulin resistance, lipid profiles, histological analysis, and liver enzymes were assessed. The oxidative stress, ER and inflammatory markers were determined by quantitative RT-PCR (qRT-PCR) and western blot analysis. Results and ConclusionThe administration of Tecomella undulata via oral gavage lowered body weight, insulin resistance, alanine transaminase (ALT), aspartate transaminase (AST), triglycerides, and total cholesterol in WDSW mice but had no effect on CDNW mice. Tecomella undulata improved steatosis, lobular inflammation, and hepatocyte ballooning and resolved NASH in WDSW mice. Furthermore, Tecomella undulata also alleviated the WDSW-induced ER stress and oxidative stress, enhanced antioxidant status, and thus reduced inflammation in the treated mice. Of note, these effects were on par with Saroglitazar, the approved drug used to treat human NASH and positive control used in the study. Thus, our findings indicate the potential of Tecomella undulata to ameliorate WDSW-induced steatohepatitis, and these preclinical data provide a strong rationale for assessing Tecomella undulata for the treatment of NASH in humans.

physiology↗