Familial hypertrophic cardiomyopathy (HCM) is an inheritable autosomal dominant trait, displaying abnormal thickening of myocardium and histologic manifestations. To date, considerable studies have uncovered the correlation between gene mutations and HCM. However, the underlying developmental etiology remains largely unknown due to the limited access to obtain cardiomyocytes (CMs) from patients with this disease. Recent breakthrough in generation of human induced pluripotent stem cells (iPSCs) from skin or blood and de novo differentiation into cardiomyocytes (iPSC-CMs) offers a novel source for disease modeling. Using this strategy, we have a unique opportunity to study the developmental etiology of HCM. This proposal will demonstrate the feasibility of elucidating myofilament diseases with patient-specific iPSC-CMs and genome-edited iPSC-CMs.
Aim 1 is to generate iPSCs from patients with HCM mutations and matched family controls as well as unrelated healthy donors.
Aim 2 is to determine the extent of disease by performing molecular and functional analyses of iPSC-CMs.
Aim 3 is to recapitulate sarcomeric HCM disease phenotype with genome editing technology. In summary, we believe findings from this study will yield novel insights into our understanding of the developmental etiology of HCM and give rise to potential new targets for therapeutic strategy of HCM.

Public Health Relevance

Familial hypertrophic cardiomyopathy (HCM) is the most commonly inherited cardiovascular disease, affecting 1 in 500 people worldwide with outcomes ranging from reduced quality of life to sudden cardiac death (SCD). Although surgical reduction of hypertrophic heart (e.g., myomectomy) can improve clinical symptoms and implantable defibrillator can prevent SCD, no specific pharmacological therapy is currently available to cure HCM. To date, the majority of HCM studies have been performed in cell lines and animal models. Due to physiological differences between animals and humans, as well as the secondary abnormalities resulting from end-stage HCM, these studies provided only limited understanding of the underlying mechanism of HCM disease phenotype. Using a multi-disciplinary approach, we will provide novel mechanistic insights into the pathological processes of sarcomeric HCM by deriving patient-specific iPSCs and genome-edited iPSCs to recapitulate the disease process and understand its mechanism of progression.

Agency
National Institute of Health (NIH)
Institute
National Heart, Lung, and Blood Institute (NHLBI)
Type
Research Project (R01)
Project #
1R01HL126527-01A1
Application #
8902469
Study Section
Special Emphasis Panel (ZRG1-CB-J (55))
Program Officer
Desvigne-Nickens, Patrice
Project Start
2015-03-10
Project End
2019-01-31
Budget Start
2015-03-10
Budget End
2016-01-31
Support Year
1
Fiscal Year
2015
Total Cost
$515,616
Indirect Cost
$194,360
Name
Stanford University
Department
Internal Medicine/Medicine
Type
Schools of Medicine
DUNS #
009214214
City
Stanford
State
CA
Country
United States
Zip Code
94304
Chang, Alex C Y; Chang, Andrew C H; Kirillova, Anna et al. (2018) Telomere shortening is a hallmark of genetic cardiomyopathies. Proc Natl Acad Sci U S A 115:9276-9281
Lee, Jaecheol; Shao, Ning-Yi; Paik, David T et al. (2018) SETD7 Drives Cardiac Lineage Commitment through Stage-Specific Transcriptional Activation. Cell Stem Cell 22:428-444.e5
Knowles, Joshua W; Ashley, Euan A (2018) Cardiovascular disease: The rise of the genetic risk score. PLoS Med 15:e1002546
Zhang, Joe Z; Guo, Hongchao; Wu, Joseph C (2018) Applications of genetically engineered human pluripotent stem cell reporters in cardiac stem cell biology. Curr Opin Biotechnol 52:66-73
Rhee, Siyeon; Chung, Jae I; King, Devin A et al. (2018) Endothelial deletion of Ino80 disrupts coronary angiogenesis and causes congenital heart disease. Nat Commun 9:368
Ma, Ning; Zhang, Joe Z; Itzhaki, Ilanit et al. (2018) Determining the Pathogenicity of a Genomic Variant of Uncertain Significance Using CRISPR/Cas9 and Human-Induced Pluripotent Stem Cells. Circulation 138:2666-2681
Liu, Chun; Oikonomopoulos, Angelos; Sayed, Nazish et al. (2018) Modeling human diseases with induced pluripotent stem cells: from 2D to 3D and beyond. Development 145:
Rhee, June-Wha; Wu, Joseph C (2018) Cardiac Cell Cycle Activation as a Strategy to Improve iPSC-Derived Cardiomyocyte Therapy. Circ Res 122:14-16
Zhao, Ming-Tao; Shao, Ning-Yi; Hu, Shijun et al. (2017) Cell Type-Specific Chromatin Signatures Underline Regulatory DNA Elements in Human Induced Pluripotent Stem Cells and Somatic Cells. Circ Res 121:1237-1250
Seeger, Timon; Porteus, Matthew; Wu, Joseph C (2017) Genome Editing in Cardiovascular Biology. Circ Res 120:778-780

Showing the most recent 10 out of 33 publications