Emodin attenuates silica-induced lung injury by inhibition of inflammation, apoptosis and epithelial-mesenchymal transition

Int Immunopharmacol. 2021 Feb:91:107277. doi: 10.1016/j.intimp.2020.107277. Epub 2020 Dec 23.

Abstract

Silicosis is a fatal pulmonary disease caused by the inhalation of silica dust, and characterized by inflammation and fibrosis of the lung, with no effective treatment to date. Here we investigate the effect of emodin, an anthraquinone derivative isolated from rhubarb using a mouse silicosis model and in vitro cultured human macrophages and alveolar epithelial cells. Results from histological examination indicated that emodin reduced the degree of alveolitis and fibrosis in the lungs of mice exposed to silica particles. We also demonstrated that emodin effectively inhibited the phosphorylation of Smad3 and NF-κB and reduced the levels of inflammatory factors in the lung tissue of mice treated with silica particles. In addition, we found that emodin inhibited apoptosis and demonstrated an anti-fibrotic effect by down-regulating the pro-apoptotic protein Bax and up-regulating the anti-apoptotic protein Bcl-2. Furthermore, emodin increased E-cadherin levels, reduced the expression of Vimentin, α-SMA and Col-I, as well as pro-inflammatory factors TGF-β1, TNF-α and IL-1β in vivo and in vitro. These results suggested that emodin can regulate epithelial-mesenchymal transition (EMT) through the inhibition of the TGF-β1/Smad3 signaling pathway and the NF-κB signaling pathway to prevent alveolar inflammation and apoptotic process. Overall, this study showed that emodin can alleviate pulmonary fibrosis in silicosis through regulating the inflammatory response and fibrotic process at multiple levels.

Keywords: Apoptosis; Emodin; Inflammatory; Pulmonary fibrosis; Silicosis.

MeSH terms

  • A549 Cells
  • Acute Lung Injury / chemically induced
  • Acute Lung Injury / metabolism
  • Acute Lung Injury / pathology
  • Acute Lung Injury / prevention & control*
  • Animals
  • Anti-Inflammatory Agents / metabolism
  • Apoptosis / drug effects*
  • Apoptosis Regulatory Proteins / metabolism
  • Coculture Techniques
  • Disease Models, Animal
  • Emodin / pharmacology*
  • Epithelial-Mesenchymal Transition / drug effects*
  • Humans
  • Macrophages / drug effects
  • Macrophages / metabolism
  • Male
  • Mice
  • Mice, Inbred C57BL
  • Pneumonia / chemically induced
  • Pneumonia / metabolism
  • Pneumonia / pathology
  • Pneumonia / prevention & control*
  • Pulmonary Alveoli / drug effects*
  • Pulmonary Alveoli / metabolism
  • Pulmonary Alveoli / pathology
  • Pulmonary Fibrosis / chemically induced
  • Pulmonary Fibrosis / metabolism
  • Pulmonary Fibrosis / pathology
  • Pulmonary Fibrosis / prevention & control*
  • Signal Transduction
  • Silicon Dioxide
  • Silicosis / metabolism
  • Silicosis / pathology
  • Silicosis / prevention & control*
  • THP-1 Cells

Substances

  • Anti-Inflammatory Agents
  • Apoptosis Regulatory Proteins
  • Silicon Dioxide
  • Emodin