Acute coronary thrombosis results in myocardial infarction (Ml) with irreversible loss of functional myocardium unless reperfusion therapy is rapidly instituted. Many patients do not present or are not amenable to prompt reperfusion, and in this large patient population new therapeutic approaches are needed. Initial studies of cell-based therapies post-MI in animal models and in patients have provided encouraging results, but the ideal donor cell population has not been determined. Preliminary data show that transplantation of undifferentiated mouse embryonic stem cells (ESCs) post-MI, resulted in myocardial repair in a mouse Ml model;however, major mechanistic questions and roadblocks remain such as the risk of tumor formation. We hypothesize that cell preparations derived from ESCs that are committed to mesodermal or cardiac lineages can repair the myocardium with minimal risk of tumorigenesis. Secondly, we hypothesize that the optimal benefit from transplanted ESC-derived cells is the result of a short-term reduction in infarct size via paracrine effects and long-term regeneration of myocardium resulting from the proliferation and differentiation of transplanted cells in the absence of significant fusion. The long-term goal of this research is to develop cellular therapies using ESCs to repair the myocardium following Ml by providing essential preclinical studies of efficacy and safety. We propose to: 1) identify and characterize ESC-derived donor cells optimal for myocardial repair with minimal risk of tumorigenesis using cell surface markers and genetic cell-type specific reporters to isolate mesodermal progenitor cells and embryonic ventricular myocytes;2) develop strategies to condition donor cells for improved survival in the setting of ischemic and oxidative stress typical of the post-MI heart employing in vitro models of ischemia and reperfusion;and 3) determine the effect of transplantation of ESCs and derivatives post-MI evaluating both short-term (infarct size, cell survival, cell proliferation) and long-term (LV structure and function by echocardiography and histology, tumor surveillance with microCT and pathology, cell fate/fusion by co- immunolabeling and Cre/lox donor/recipient techniques, and regenerated myocytes phenotype using cellular electrophysiology) outcomes. Overall, these studies will provide new insights into cell-based therapies in the post-MI setting and bring approaches using human ESCs closer to clinical application.

Agency
National Institute of Health (NIH)
Institute
National Heart, Lung, and Blood Institute (NHLBI)
Type
Research Project (R01)
Project #
5R01HL084615-03
Application #
7568199
Study Section
Myocardial Ischemia and Metabolism Study Section (MIM)
Program Officer
Schwartz, Lisa
Project Start
2007-01-15
Project End
2010-12-31
Budget Start
2009-01-01
Budget End
2009-12-31
Support Year
3
Fiscal Year
2009
Total Cost
$363,740
Indirect Cost
Name
University of Wisconsin Madison
Department
Internal Medicine/Medicine
Type
Schools of Medicine
DUNS #
161202122
City
Madison
State
WI
Country
United States
Zip Code
53715
Cadet, Jean Scotty; Kamp, Timothy J (2017) A Recipe for T-Tubules in Human iPS Cell-Derived Cardiomyocytes. Circ Res 121:1294-1295
Nelson, Daryl O; Lalit, Pratik A; Biermann, Mitch et al. (2016) Irx4 Marks a Multipotent, Ventricular-Specific Progenitor Cell. Stem Cells 34:2875-2888
Nelson, Daryl O; Jin, Dexter X; Downs, Karen M et al. (2014) Irx4 identifies a chamber-specific cell population that contributes to ventricular myocardium development. Dev Dyn 243:381-92
Lian, Xiaojun; Zhang, Jianhua; Zhu, Kexian et al. (2013) Insulin inhibits cardiac mesoderm, not mesendoderm, formation during cardiac differentiation of human pluripotent stem cells and modulation of canonical Wnt signaling can rescue this inhibition. Stem Cells 31:447-57
Mummery, Christine L; Zhang, Jianhua; Ng, Elizabeth S et al. (2012) Differentiation of human embryonic stem cells and induced pluripotent stem cells to cardiomyocytes: a methods overview. Circ Res 111:344-58
Zhang, Jianhua; Klos, Matthew; Wilson, Gisela F et al. (2012) Extracellular matrix promotes highly efficient cardiac differentiation of human pluripotent stem cells: the matrix sandwich method. Circ Res 111:1125-36
Kamp, Timothy J (2011) Recognizing heart cells in a crowd. Nat Methods 8:1013-6
Kamp, Timothy J (2011) An electrifying iPSC disease model: long QT syndrome type 2 and heart cells in a dish. Cell Stem Cell 8:130-1
Mohr, Jeffrey C; Zhang, Jianhua; Azarin, Samira M et al. (2010) The microwell control of embryoid body size in order to regulate cardiac differentiation of human embryonic stem cells. Biomaterials 31:1885-93
Kamp, Timothy J; Lyons, Gary E (2009) On the road to iPS cell cardiovascular applications. Circ Res 105:617-9

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