Effect of Quercetin on mitoBKCa Channel and Mitochondrial Function in Human Bronchial Epithelial Cells Exposed to

Adrianna Dabrowska1, Miroslaw Zajac1, Piotr Bednarczyk1

  • 1Department of Physics and Biophysics, Institute of Biology, Warsaw University of Life Sciences, 02-776 Warsaw, Poland.

Insights

Particulate matter exposure harms airway cells by increasing oxidative stress. Quercetin protects these cells by activating mitochondrial potassium channels, reducing damage and restoring cell viability.

Area of Science:

  • Cell Biology
  • Environmental Health
  • Mitochondrial Physiology

Background:

  • Particulate matter (PM) exposure elevates reactive oxygen species (ROS), causing mitochondrial damage and cell death.
  • Mitochondrial potassium channels (mitoK) are implicated in cytoprotection, potentially through ROS modulation.

Purpose of the Study:

  • To investigate the cytoprotective role of the mitochondrial calcium-dependent potassium channel (mitoBKCa) against PM-induced cellular damage.
  • To determine the effects of quercetin, a mitoBKCa opener, on human bronchial epithelial cells exposed to PM.

Main Methods:

  • Patch-clamp electrophysiology, transepithelial electrical resistance (TEER) assessment, mitochondrial respiration assays, ROS and mitochondrial membrane potential measurements, and cell viability assays were employed.
  • Experiments utilized the 16HBE14σ human bronchial epithelial cell line exposed to SRM-PM4.0 (PM < 4 μm).

Main Results:

  • PM exposure reduced TEER and mitochondrial function, and increased ROS levels in HBE cells.
  • Quercetin partially reversed PM-induced TEER reduction, decreased mitochondrial membrane potential, increased mitochondrial respiration, and reduced ROS.
  • Quercetin restored HBE cell viability following PM exposure, indicating a protective effect mediated partly by mitoBKCa channel activation.

Conclusions:

  • PM exerts detrimental effects on human bronchial epithelial cells at both cellular and mitochondrial levels.
  • Quercetin demonstrates protective capabilities against PM-induced airway epithelial barrier dysfunction, involving mitoBKCa channel activation.
  • Quercetin's protective mechanism extends beyond solely modulating mitoBKCa activity.