N-Acetylcysteine Mitigates Renal Fibrosis by Modulating Inflammasome and Gluconeogenic Pathways Under Cardiometabolic

Ching-Chun Chen1, Hui-Pei Huang2,3, I-Ning Tsai1

  • 1Institute of Medicine, Chung Shan Medical University, Taichung 40201, Taiwan.

Insights

N-Acetylcysteine (NAC) combats kidney damage from cardio-renal metabolic syndrome by reducing inflammation and abnormal sugar production in the kidneys. This antioxidant therapy improves kidney function and limits fibrosis in affected mice.

Area of Science:

  • Nephrology
  • Metabolic Syndrome
  • Pharmacology

Background:

  • Cardio-renal metabolic (CRM) syndrome involves insulin resistance and dyslipidemia, leading to kidney dysfunction via disrupted insulin signaling, oxidative stress, and inflammasome activation.
  • Aberrant renal gluconeogenesis contributes to tubular injury in cardiometabolic stress, but its link to inflammation and fibrosis is unclear.

Purpose of the Study:

  • To investigate the protective effects of N-Acetylcysteine (NAC) on kidney injury induced by cardiometabolic stress.
  • To elucidate the mechanisms by which NAC mitigates renal fibrosis and dysfunction in a mouse model of CRM syndrome.

Main Methods:

  • ApoE-/- mice fed a high-fat diet and treated with streptozotocin were used to model CRM syndrome.
  • N-Acetylcysteine (NAC) was administered to assess its impact on metabolic parameters, renal histopathology, and molecular pathways.
  • In vitro studies using NRK-52E renal tubular cells exposed to high glucose and oleic acid were performed to examine NAC's cellular effects.

Main Results:

  • NAC supplementation improved metabolic abnormalities and attenuated renal histopathological damage, including tubular dilation and glomerular hypertrophy.
  • NAC suppressed renal gluconeogenesis by downregulating key enzyme expression and mitigated epithelial-mesenchymal transition, reducing fibrotic markers.
  • In vitro, NAC reduced reactive oxygen species, restored insulin signaling, and inhibited inflammasome activation in renal tubular cells.

Conclusions:

  • NAC mitigates cardiometabolic stress-induced renal injury by modulating inflammasome activation and renal gluconeogenesis.
  • NAC demonstrates potential as a therapeutic agent for renal fibrosis in the context of cardio-renal metabolic syndrome.