Trichostatin A modulates intracellular reactive oxygen species through SOD2 and FOXO1 in human bone

Sin-Gu Jeong1, Goang-Won Cho

  • 1Department of Biology, College of Natural Science, Chosun University, Gwangju, Korea; Department of Life Science, BK21-Plus Research Team for Bioactive Control Technology, Chosun University, Gwangju, Korea.

Insights

Trichostatin A (TSA) protects human bone marrow-mesenchymal stem cells (hBM-MSCs) from oxidative stress by regulating reactive oxygen species (ROS). Optimal TSA doses enhance cell protection via SOD2 and FOXO1 pathways.

Area of Science:

  • Stem Cell Biology
  • Molecular Biology
  • Biochemistry

Background:

  • Engraft cells face oxidative stress and inflammation, impacting stem cell therapy efficacy.
  • Histone deacetylase (HDAC) inhibitors show potential in mitigating oxidative stress damage.

Purpose of the Study:

  • To investigate if the HDAC inhibitor trichostatin A (TSA) regulates reactive oxygen species (ROS) in human bone marrow-mesenchymal stem cells (hBM-MSCs).
  • To determine the protective effects of TSA against oxidative stress-induced damage in hBM-MSCs.

Main Methods:

  • Exposure of hBM-MSCs to hydrogen peroxide (H2O2) to induce oxidative stress.
  • Treatment with varying doses of TSA to assess ROS levels, antioxidant enzyme expression (SOD2), and cell viability.
  • Immunoblot analysis to evaluate levels of key signaling proteins including FOXO1, SOD2, and p53.

Main Results:

  • TSA treatment suppressed intracellular ROS levels elevated by H2O2.
  • TSA increased superoxide dismutase 2 (SOD2) levels, particularly at 200 nM.
  • Low TSA doses (50-500 nM) enhanced cell protection against oxidative stress, while high doses (5-10 μM) decreased it.
  • TSA reversed the H2O2-induced decrease in phosphorylated-FOXO1 and phosphorylated-SOD2, and the increase in p53.

Conclusions:

  • TSA effectively modulates ROS in hBM-MSCs, offering protection against oxidative stress.
  • The protective mechanism involves the activation of SOD2 and FOXO1 signaling pathways.
  • Optimized TSA treatment holds promise for improving stem cell therapy efficacy by enhancing stem cell resilience.

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