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1.
Science ; 377(6606): eabo1984, 2022 08 05.
Article in English | MEDLINE | ID: mdl-35926050

ABSTRACT

Pathogenic variants in genes that cause dilated cardiomyopathy (DCM) and arrhythmogenic cardiomyopathy (ACM) convey high risks for the development of heart failure through unknown mechanisms. Using single-nucleus RNA sequencing, we characterized the transcriptome of 880,000 nuclei from 18 control and 61 failing, nonischemic human hearts with pathogenic variants in DCM and ACM genes or idiopathic disease. We performed genotype-stratified analyses of the ventricular cell lineages and transcriptional states. The resultant DCM and ACM ventricular cell atlas demonstrated distinct right and left ventricular responses, highlighting genotype-associated pathways, intercellular interactions, and differential gene expression at single-cell resolution. Together, these data illuminate both shared and distinct cellular and molecular architectures of human heart failure and suggest candidate therapeutic targets.


Subject(s)
Arrhythmogenic Right Ventricular Dysplasia , Cardiomyopathy, Dilated , Heart Failure , Single-Cell Analysis , Transcriptome , Arrhythmogenic Right Ventricular Dysplasia/genetics , Atlases as Topic , Cardiomyopathy, Dilated/genetics , Cell Nucleus/genetics , Heart Failure/genetics , Heart Ventricles , Humans , RNA-Seq
2.
Sci Rep ; 10(1): 13016, 2020 08 03.
Article in English | MEDLINE | ID: mdl-32747668

ABSTRACT

Ischemic heart disease remains the foremost cause of death globally, with survivors at risk for subsequent heart failure. Paradoxically, cell therapies to offset cardiomyocyte loss after ischemic injury improve long-term cardiac function despite a lack of durable engraftment. An evolving consensus, inferred preponderantly from non-human models, is that transplanted cells benefit the heart via early paracrine signals. Here, we tested the impact of paracrine signals on human cardiomyocytes, using human pluripotent stem cell-derived cardiomyocytes (hPSC-CMs) as the target of mouse and human cardiac mesenchymal stromal cells (cMSC) with progenitor-like features. In co-culture and conditioned medium studies, cMSCs markedly inhibited human cardiomyocyte death. Little or no protection was conferred by mouse tail tip or human skin fibroblasts. Consistent with the results of transcriptomic profiling, functional analyses showed that the cMSC secretome suppressed apoptosis and preserved cardiac mitochondrial transmembrane potential. Protection was independent of exosomes under the conditions tested. In mice, injecting cMSC-conditioned media into the infarct border zone reduced apoptotic cardiomyocytes > 70% locally. Thus, hPSC-CMs provide an auspicious, relevant human platform to investigate extracellular signals for cardiac muscle survival, substantiating human cardioprotection by cMSCs, and suggesting the cMSC secretome or its components as potential cell-free therapeutic products.


Subject(s)
Mesenchymal Stem Cells/cytology , Myocytes, Cardiac/cytology , Pluripotent Stem Cells/cytology , Stromal Cells/cytology , Animals , Coculture Techniques , Culture Media, Conditioned , Humans , Mice
3.
Stem Cell Reports ; 12(3): 461-473, 2019 03 05.
Article in English | MEDLINE | ID: mdl-30745033

ABSTRACT

Satellite cells are responsible for skeletal muscle regeneration. Upon activation, they proliferate as transient amplifying myoblasts, most of which fuse into regenerating myofibers. Despite their remarkable differentiation potential, these cells have limited migration capacity, which curtails clinical use for widespread forms of muscular dystrophy. Conversely, skeletal muscle perivascular cells have less myogenic potential but better migration capacity than satellite cells. Here we show that modulation of Notch and PDGF pathways, involved in developmental specification of pericytes, induces perivascular cell features in adult mouse and human satellite cell-derived myoblasts. DLL4 and PDGF-BB-treated cells express markers of perivascular cells and associate with endothelial networks while also upregulating markers of satellite cell self-renewal. Moreover, treated cells acquire trans-endothelial migration ability while remaining capable of engrafting skeletal muscle upon intramuscular transplantation. These results extend our understanding of muscle stem cell fate plasticity and provide a druggable pathway with clinical relevance for muscle cell therapy.


Subject(s)
Biomarkers/metabolism , Cell Movement/physiology , Receptors, Notch/metabolism , Receptors, Platelet-Derived Growth Factor/metabolism , Satellite Cells, Skeletal Muscle/metabolism , Signal Transduction/physiology , Stem Cells/metabolism , Animals , Endothelial Cells/metabolism , Humans , Intracellular Signaling Peptides and Proteins/metabolism , Membrane Proteins/metabolism , Mice , Mice, Inbred C57BL , Muscle Development/physiology , Muscle, Skeletal/metabolism , Myoblasts/metabolism , Pericytes/metabolism , Regeneration/physiology , Up-Regulation/physiology
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