Cepharanthine Alleviates DSS-Induced Ulcerative Colitis via Regulating Aconitate Decarboxylase 1 Expression and Macrophage Infiltration

Molecules. 2023 Jan 20;28(3):1060. doi: 10.3390/molecules28031060.

Abstract

Cepharanthine (CEP), a bisbenzylisoquinoline alkaloid from tubers of Stephania, protects against some inflammatory diseases. Aconitate decarboxylase 1 (ACOD1) is also known as immune-responsive gene 1 (IRG1), which plays an important immunometabolism role in inflammatory diseases by mediating the production of itaconic acid. ACOD1 exhibits abnormal expression in ulcerative colitis (UC). However, whether CEP can combat UC by affecting ACOD1 expression remains unanswered. This study was designed to explore the protective effects and mechanisms of CEP in treating colitis through in vitro and in vivo experiments. In vitro assays indicated that CEP inhibited LPS-induced secretion of pro-inflammatory cytokines and ACOD1 expression in RAW264.7 macrophages. Additionally, in the mouse model of DSS-induced colitis, CEP decreased macrophage infiltration and ACOD1 expression in colon tissue. After treatment with antibiotics (Abx), the expression of ACOD1 changed with the composition of gut microbiota. Correlation analysis also revealed that Family-XIII-AD3011-group and Rumini-clostridium-6 were positively correlated with ACOD1 expression level. Additionally, data of the integrative Human Microbiome Project (iHMP) showed that ACOD1 was highly expressed in the colon tissue of UC patients and this expression was positively correlated with the severity of intestinal inflammation. Collectively, CEP can counter UC by modulating gut microbiota and inhibiting the expression of ACOD1. CEP may serve as a potential pharmaceutical candidate in the treatment of UC.

Keywords: ACOD1; Cepharanthine; colitis; gut microbiota; macrophage.

MeSH terms

  • Animals
  • Benzylisoquinolines* / pharmacology
  • Colitis* / metabolism
  • Colitis, Ulcerative* / chemically induced
  • Colitis, Ulcerative* / drug therapy
  • Colitis, Ulcerative* / metabolism
  • Colon / metabolism
  • Dextran Sulfate / toxicity
  • Disease Models, Animal
  • Humans
  • Macrophages
  • Mice
  • Mice, Inbred C57BL

Substances

  • cepharanthine
  • aconitate decarboxylase
  • Benzylisoquinolines
  • Dextran Sulfate

Grants and funding

This study was supported by Jiangsu Postgraduate Practice Innovation Program (SJCX21_0634); Huai’an Key Laboratory of Geriatric Diseases and Geriatric Syndrome Research (HAP202105).