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High Efficiency Differentiation of Human Pluripotent Stem Cells to Cardiomyocytes and Characterization by Flow Cytometry
Published on: September 23, 2014
The Rho guanine nucleotide exchange factor AKAP13 (BRX) is essential for cardiac development in mice
Chantal M Mayers1, Jennifer Wadell, Kate McLean
1Program in Reproductive and Adult Endocrinology, National Institutes of Health, Bethesda, Maryland 20892, USA.
Abstract:
A fundamental biologic principle is that diverse biologic signals are channeled through shared signaling cascades to regulate development. Large scaffold proteins that bind multiple proteins are capable of coordinating shared signaling pathways to provide specificity to activation of key developmental genes. Although much is known about transcription factors and target genes that regulate cardiomyocyte differentiation, less is known about scaffold proteins that couple signals at the cell surface to differentiation factors in developing heart cells. Here we show that AKAP13 (also known as Brx-1, AKAP-Lbc, and proto-Lbc), a unique protein kinase A-anchoring protein (AKAP) guanine nucleotide exchange region belonging to the Dbl family of oncogenes, is essential for cardiac development. Cardiomyocytes of Akap13-null mice had deficient sarcomere formation, and developing hearts were thin-walled and mice died at embryonic day 10.5-11.0. Disruption of Akap13 was accompanied by reduced expression of Mef2C. Consistent with a role of AKAP13 upstream of MEF2C, Akap13 siRNA led to a reduction in Mef2C mRNA, and overexpression of AKAP13 augmented MEF2C-dependent reporter activity. The results suggest that AKAP13 coordinates Galpha(12) and Rho signaling to an essential transcription program in developing cardiomyocytes.
Insights
AKAP13 is crucial for cardiac development, coordinating cell signals for heart formation. Its absence in mice leads to severe heart defects and embryonic lethality, highlighting its essential role in cardiomyocyte differentiation.
Area of Science:
- Molecular Biology
- Developmental Biology
- Cardiovascular Science
Background:
- Scaffold proteins coordinate signaling pathways for developmental gene activation.
- Specific scaffold proteins coupling cell surface signals to cardiomyocyte differentiation remain poorly understood.
Purpose of the Study:
- To investigate the role of AKAP13 (A-Kinase Anchoring Protein 13) in cardiac development.
Main Methods:
- Utilized Akap13-null mice to study cardiac development.
- Employed siRNA and overexpression studies to assess AKAP13 function.
- Analyzed Mef2C expression and MEF2C-dependent reporter activity.
Main Results:
- Akap13-null mice exhibited deficient sarcomere formation, thin-walled hearts, and embryonic lethality.
- AKAP13 disruption reduced Mef2C expression.
- AKAP13 overexpression enhanced MEF2C-dependent reporter activity.
Conclusions:
- AKAP13 is essential for cardiac development.
- AKAP13 coordinates Galpha(12) and Rho signaling pathways impacting Mef2C transcription.
- AKAP13 plays a critical role in regulating cardiomyocyte differentiation.
