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Updated: Jun 25, 2025

Single Cell Transcriptional Profiling of Adult Mouse Cardiomyocytes
Published on: December 28, 2011
Personalized transcriptome signatures in a cardiomyopathy stem cell biobank
Emma Monte1, Takaaki Furihata1, Guangwen Wang1
1Department of Genetics, Stanford University School of Medicine.
Insights
Genetic background influences cardiomyopathy by altering gene expression, as shown in a new stem cell biobank. This study highlights ADCY5
Area of Science:
- Cardiovascular Genetics
- Stem Cell Biology
- Molecular Cardiology
Background:
- Pathogenic mutations alone do not fully explain hypertrophic (HCM) and dilated (DCM) cardiomyopathy.
- Investigating genetic background's influence on cardiomyopathy through gene expression signatures.
- Established a cardiomyopathy biobank for personalized genotype-phenotype relationship studies in human cell lines.
Approach:
- Created a stem cell biobank from 308 patients and controls, generating induced pluripotent stem cells (iPSCs) from 300 donors.
- Performed whole genome sequencing and RNA-sequencing on iPSC-derived cardiomyocytes.
- Inferred personalized co-expression networks and analyzed mutation burden and drug treatment effects.
Key Points:
- Identified 78 pathogenic mutations in iPSC lines from cardiomyopathy patients.
- DCM lines without known mutations showed increased mutation burden correlating with reduced ejection fraction.
- Discovered two distinct transcriptomic subtypes in HCM, with one showing disease severity-correlated network activation.
- Both HCM and DCM networks highlighted ADCY5 as a key hubnode, responsive to drug treatment.
Conclusions:
- Established a valuable stem cell biobank for cardiomyopathy research.
- Genetic background significantly influences pathological gene expression in cardiomyopathy.
- ADCY5 plays a crucial role in the molecular mechanisms of cardiomyopathy.
Background:
There is growing evidence that pathogenic mutations do not fully explain hypertrophic (HCM) or dilated (DCM) cardiomyopathy phenotypes. We hypothesized that if a patient's genetic background was influencing cardiomyopathy this should be detectable as signatures in gene expression. We built a cardiomyopathy biobank resource for interrogating personalized genotype phenotype relationships in human cell lines.
Methods:
We recruited 308 diseased and control patients for our cardiomyopathy stem cell biobank. We successfully reprogrammed PBMCs (peripheral blood mononuclear cells) into induced pluripotent stem cells (iPSCs) for 300 donors. These iPSCs underwent whole genome sequencing and were differentiated into cardiomyocytes for RNA-seq. In addition to annotating pathogenic variants, mutation burden in a panel of cardiomyopathy genes was assessed for correlation with echocardiogram measurements. Line-specific co-expression networks were inferred to evaluate transcriptomic subtypes. Drug treatment targeted the sarcomere, either by activation with omecamtiv mecarbil or inhibition with mavacamten, to alter contractility.
Results:
We generated an iPSC biobank from 300 donors, which included 101 individuals with HCM and 88 with DCM. Whole genome sequencing of 299 iPSC lines identified 78 unique pathogenic or likely pathogenic mutations in the diseased lines. Notably, only DCM lines lacking a known pathogenic or likely pathogenic mutation replicated a finding in the literature for greater nonsynonymous SNV mutation burden in 102 cardiomyopathy genes to correlate with lower left ventricular ejection fraction in DCM. We analyzed RNA-sequencing data from iPSC-derived cardiomyocytes for 102 donors. Inferred personalized co-expression networks revealed two transcriptional subtypes of HCM. The first subtype exhibited concerted activation of the co-expression network, with the degree of activation reflective of the disease severity of the donor. In contrast, the second HCM subtype and the entire DCM cohort exhibited partial activation of the respective disease network, with the strength of specific gene by gene relationships dependent on the iPSC-derived cardiomyocyte line. ADCY5 was the largest hubnode in both the HCM and DCM networks and partially corrected in response to drug treatment.
Conclusions:
We have a established a stem cell biobank for studying cardiomyopathy. Our analysis supports the hypothesis the genetic background influences pathologic gene expression programs and support a role for ADCY5 in cardiomyopathy.

