Dynamic MicroRNA Expression Programs During Cardiac Differentiation of Human Embryonic Stem Cells

Author:

Wilson Kitchener D.1,Hu Shijun1,Venkatasubrahmanyam Shivkumar1,Fu Ji-Dong1,Sun Ning1,Abilez Oscar J.1,Baugh Joshua J.A.1,Jia Fangjun1,Ghosh Zhumur1,Li Ronald A.1,Butte Atul J.1,Wu Joseph C.1

Affiliation:

1. From the Departments of Bioengineering (K.D.W., O.J.A.), Medicine (Cardiology: K.D.W., S.H., N.S., F.J., Z.G., J.C.W.; Biomedical Informatics: S.V., A.J.B.), and Surgery (O.J.A., J.J.A.B.) and the Institute for Stem Cell Biology and Regenerative Medicine (J.C.W.), Stanford University School of Medicine, Stanford, Calif; the Center of Cardiovascular Research (J.-D.F., R.A.L.), Mount Sinai School of Medicine, New York, NY; and the Stem Cell and Regenerative Medicine Program (R.A.L.), Research Center...

Abstract

Background— MicroRNAs (miRNAs) are a newly discovered endogenous class of small, noncoding RNAs that play important posttranscriptional regulatory roles by targeting messenger RNAs for cleavage or translational repression. Human embryonic stem cells are known to express miRNAs that are often undetectable in adult organs, and a growing body of evidence has implicated miRNAs as important arbiters of heart development and disease. Methods and Results— To better understand the transition between the human embryonic and cardiac “miRNA-omes,” we report here the first miRNA profiling study of cardiomyocytes derived from human embryonic stem cells. Analyzing 711 unique miRNAs, we have identified several interesting miRNAs, including miR-1, -133, and -208, that have been previously reported to be involved in cardiac development and disease and that show surprising patterns of expression across our samples. We also identified novel miRNAs, such as miR-499, that are strongly associated with cardiac differentiation and that share many predicted targets with miR-208. Overexpression of miR-499 and -1 resulted in upregulation of important cardiac myosin heavy-chain genes in embryoid bodies; miR-499 overexpression also caused upregulation of the cardiac transcription factor MEF2C. Conclusions— Taken together, our data give significant insight into the regulatory networks that govern human embryonic stem cell differentiation and highlight the ability of miRNAs to perturb, and even control, the genes that are involved in cardiac specification of human embryonic stem cells.

Publisher

Ovid Technologies (Wolters Kluwer Health)

Subject

Genetics (clinical),Cardiology and Cardiovascular Medicine,Genetics

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