Inhaled tire-wear microplastic particles induced pulmonary fibrotic injury via epithelial cytoskeleton rearrangement

Environ Int. 2022 Jun:164:107257. doi: 10.1016/j.envint.2022.107257. Epub 2022 Apr 26.

Abstract

Tire wear microplastic particles (TWMPs) are emerging microplastic pollutants that have gained increasing attention lately. However, the health effect of inhaled airborne TWMPs has never been explored before and may already be included in particulate matter morbidity and mortality. Here, we endeavored to address the preliminary study of TWMP inhalation-induced pulmonary toxic effects and its epigenetic mechanisms in C57BL/6 mice. As a result, restricted ventilatory dysfunction and fibrotic pathological changes were observed in TWMP-treaded mice. Further research found that attenuation of miR-1a-3p plays an important role in TWMP-induced lung injury. Results from in vitro study confirmed that cytoskeleton regulatory gene twinfilin-1 was one of the target genes of miR-1a-3p, and involved in cytoskeleton rearrangement caused by TWMP exposure. Mechanistically, miR-1a-3p inhibited the F-actin formation by targeting cytoskeletal regulatory proteins twinfilin-1, leading to TWMP-induced pulmonary fibrotic injury. While we are in the very early stages of explaining the role of epigenetics in TWMP-induced lung injury, the potential for the use of epigenetic marks as biomarkers is high and discoveries made in this field will likely bring us closer to better understanding this crucial mechanism.

Keywords: Cytoskeletal rearrangement; Epigenetics; Inhalation exposure; Pulmonary fibrosis; Tire wear microplastic particle.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Animals
  • Cytoskeleton / metabolism
  • Lung Injury* / chemically induced
  • Lung Injury* / metabolism
  • Mice
  • Mice, Inbred C57BL
  • MicroRNAs* / genetics
  • Microplastics
  • Plastics / metabolism

Substances

  • MicroRNAs
  • Microplastics
  • Plastics