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Preparation of Mouse Embryonic Fibroblast Cells Suitable for Culturing Human Embryonic and Induced Pluripotent Stem Cells
Published on: June 21, 2012
Factors released from embryonic stem cells inhibit apoptosis of H9c2 cells
Dinender K Singla1, Debbie E McDonald
1Department of Medicine, Division of Cardiology, Cardiovascular Research Institute, University of Vermont, College of Medicine, Colchester, Vermont, USA.
Insights
Embryonic stem cells release factors that protect heart cells from apoptosis. Tissue inhibitor of metalloproteinase-1 (TIMP-1) mediates these anti-apoptotic effects, suggesting therapeutic potential for heart disease.
Area of Science:
- Cardiology
- Stem Cell Biology
- Molecular Biology
Background:
- Embryonic stem (ES) cells improve cardiac function after myocardial infarction, but regeneration is limited.
- The mechanisms behind ES cell-mediated functional improvement remain unclear.
Purpose of the Study:
- To investigate novel mechanisms by which ES cells exert protective effects on cardiomyocytes.
- To identify specific factors released by ES cells that inhibit apoptosis.
Main Methods:
- Generated conditioned medium (CM) from mouse ES cells.
- Exposed rat cardiomyocyte-derived H9c2 cells to hydrogen peroxide (H2O2) and treated with ES cell-CM.
- Assessed apoptosis using TUNEL staining, ELISA, caspase-3 activity, and DNA laddering.
- Quantified protein levels (cystatin c, osteopontin, clusterin, TIMP-1) using Luminex technology.
- Investigated the role of TIMP-1 using antibodies and a TIMP-1-overexpressing cell line.
Main Results:
- ES cell-CM significantly reduced H2O2-induced apoptosis in H9c2 cells.
- Elevated levels of anti-apoptotic factors, including TIMP-1, were detected in ES cell-CM.
- TIMP-1 antibody partially blocked the anti-apoptotic effect of ES cell-CM.
- CM from TIMP-1-overexpressing cells also inhibited H2O2-induced apoptosis.
Conclusions:
- ES cells release anti-apoptotic factors that protect cardiomyocytes.
- Tissue inhibitor of metalloproteinase-1 (TIMP-1) plays a key role in mediating these protective effects.
- These findings suggest potential therapeutic applications for ES cell-derived factors in ischemic heart disease and other conditions.
Abstract:
Our recent study (Singla DK, Hacker TA, Ma L, Douglas PS, Sullivan R, Lyons GE, Kamp TJ, J Mol Cell Cardiol 40: 195-200, 2006) suggests that transplanted embryonic stem (ES) cells subsequent to myocardial infarction differentiate into the major cell types in the heart and improve cardiac function. However, the extent of regeneration is relatively meager compared with the observed functional improvement. The mechanisms underlying their improved function are completely unknown. In this report, we provide evidence using a cell culture model system for novel mechanisms that involve the release of cytoprotective, anti-apoptotic factor(s) from ES cells and inhibit H(2)O(2)-induced apoptosis in the rat cardiomyocyte-derived cell line H9c2. Conditioned medium (CM) from growing mouse ES cells treated with and without H(2)O(2) was generated. Apoptosis was induced after exposure to H(2)O(2) in H9c2 cells for 2 h followed by replacement with fresh cell culture or ES cell-CM. After 24 h, H9c2 cells treated with both ES cell-CMs demonstrated significantly decreased apoptosis, as determined by terminal deoxynucleotidyl transferase dUTP-mediated nick-end labeling staining, apoptotic ELISA, caspase-3 activity, and DNA ladder. Next, using Luminex technology, we examined the presence of antiapoptotic proteins cystatin c, osteopontin, and clusterin and anti-fibrotic, tissue inhibitor of metalloproteinase-1 (TIMP-1) in both ES cell-CMs. The levels of released factors were 2- to 170-fold higher than those in H9c2 cell-CM. Antiapoptotic effects of ES cell-CM were significantly inhibited with TIMP-1 antibody, suggesting that TIMP-1 is an important factor to inhibit apoptosis. Furthermore, we used CM from an TIMP-1-overexpressing cell line and demonstrated that H(2)O(2)-induced apoptosis in the H9c2 cells was significantly inhibited. These observations demonstrate that factors released from ES cells contain antiapoptotic factors and that the effects are mediated by TIMP-1. Moreover, these findings suggest that released factors might be useful for therapeutic applications in ischemic heart disease as well as for many other diseases.
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