Trichostatin A modulates intracellular reactive oxygen species through SOD2 and FOXO1 in human bone
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.
Abstract:
Engraft cells are often exposed to oxidative stress and inflammation; therefore, any factor that can provide the stem cells resistance to these stresses may yield better efficacy in stem cell therapy. Studies indicate that histone deacetylase (HDACs) inhibitors alleviate damage induced by oxidative stress. In this study, we investigated whether regulation of reactive oxygen species (ROS) occurs through the HDAC inhibitor trichostatin A (TSA) in human bone marrow-mesenchymal stem cells (hBM-MSCs). Intracellular ROS levels increased following exposure to hydrogen peroxide (H2 O2 ), and were suppressed by TSA treatment. Levels of the antioxidant enzyme superoxide dismutase 2 (SOD2) increased following treatment with 200 nM TSA and to a lesser level at 1-5 μM TSA. Cell protective effects against oxidative stress were significantly increased in TSA-MSCs after treatment with low doses of TSA (50-500 nM) and decreased with high doses of TSA (5-10 μM). Consistent results were obtained with immunoblot analysis for caspase3. Investigation of Forkhead box O1 (FOXO1), superoxide dismutase 2 (SOD2), and p53 levels to determine intracellular signaling by TSA in oxidative stress-induced MSCs demonstrated that expression of phosphorylated-FOXO1 and phosphorylated-SOD2 decreased in H2 O2 -treated MSCs while levels of p53 increased. These effects were reversed by the treatment of 200 nM TSA. These results suggest that the main function of ROS modulation by TSA is activated through SOD2 and FOXO1. Thus, optimal treatment with TSA may protect hBM-MSCs against oxidative stress.
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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