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Dexpanthenol Attenuates High-Fructose Corn Syrup-Induced Hepatic Injury in Young Adult Rats by Modulating Oxidative
Abdulkerim Elmas1, Halil Asci2, Muhammet Yusuf Tepebasi3
1Division of Pediatric Gastroenterology, Hepatology and Nutrition, Department of Pediatrics, Faculty of Medicine, Suleyman Demirel University, Isparta 32100, Türkiye.
None:
Excessive intake of high-fructose corn syrup (HFCS) contributes to pediatric metabolic dysfunction-associated steatotic liver disease, but the mechanisms linking fructose exposure to inflammatory cell death remain incompletely defined. This study investigated whether dexpanthenol (DEX) attenuates HFCS-induced liver injury by modulating oxidative stress, apoptosis, and nucleotide-binding domain-like receptor protein 3 (NLRP3) inflammasome-associated pyroptotic signaling. Thirty-two young adult male Wistar rats were assigned to control, HFCS, HFCS+DEX, and DEX groups (n = 8 each). HFCS-induced liver injury was established with 20% HFCS-55 in drinking water for 8 weeks. DEX (500 mg/kg/day, intraperitoneally) was administered from the end of week 4 to week 8. Liver tissues were assessed by histopathology; immunohistochemistry for caspase-3, malondialdehyde, and proliferating cell nuclear antigen; biochemical measurement of total antioxidant and oxidant status; and RT-qPCR analysis of Nlrp3, caspase-1, gasdermin D, and interleukin-1β. HFCS exposure caused steatosis, inflammation, and necrosis; increased histopathological scores; enhanced caspase-3, malondialdehyde, and proliferating cell nuclear antigen expression; elevated total oxidant status; and markedly upregulated inflammasome-related genes. Total antioxidant status did not differ among groups. DEX significantly improved hepatic architecture; reduced immunohistochemical markers of oxidative stress, apoptosis, and injury-associated proliferation; and downregulated NLRP3, caspase-1, gasdermin D, and interleukin-1β expression. These findings suggest that DEX attenuates HFCS-induced liver injury through a multi-target mechanism involving suppression of oxidative damage, apoptosis, and inflammasome-associated pyroptotic signaling in young adult rats.
