Mono- and multi-nucleated ventricular cardiomyocytes constitute a transcriptionally homogenous cell population

Michail Yekelchyk1, Stefan Guenther1,2, Jens Preussner1

  • 1Department of Cardiac Development and Remodeling, Max Planck Institute for Heart and Lung Research, Bad Nauheim, Germany.

Insights

Adult heart cells (cardiomyocytes) have similar gene activity whether they have one or multiple nuclei. Cardiac hypertrophy causes gene expression changes, leading to cellular diversity.

Area of Science:

  • Cardiovascular Biology
  • Molecular Cardiology
  • Cellular Heterogeneity

Background:

  • Adult ventricular cardiomyocytes exist as mono- or multi-nucleated cells.
  • Cardiac hypertrophy induces morphological changes in cardiomyocytes.
  • Transcriptional differences between mono- and multi-nucleated cardiomyocytes are unknown.

Purpose of the Study:

  • To determine the transcriptional profile of mono- and multi-nucleated adult cardiomyocytes using single-cell RNA-sequencing (scRNA-seq).
  • To investigate cardiomyocyte heterogeneity under baseline and pressure-induced cardiac hypertrophy conditions.

Main Methods:

  • Developed an array-based scRNA-seq approach for rod-shaped, multi-nucleated cardiomyocytes.
  • Isolated cardiomyocytes from healthy and hypertrophic hearts (pressure-induced cardiac hypertrophy).
  • Utilized strict quality control criteria, excluding damaged cells, to avoid artificial clustering.

Main Results:

  • Single-cell transcriptomes of mono- and multi-nucleated cardiomyocytes were highly similar under baseline conditions.
  • Cardiomyocytes from hypertrophic hearts exhibited heterogeneous transcriptional signatures, indicative of hypoxia-induced responses.
  • An inverse correlation between HIF1α-positive cells and CD31-stained vessels suggested imbalanced vascular growth contributes to cellular heterogeneity.

Conclusions:

  • Individual mono- and multi-nucleated cardiomyocytes express nearly identical gene sets.
  • Cardiac hypertrophy disrupts cardiomyocyte homogeneity through differential HIF1α-dependent responses.
  • Non-homogenous vessel growth in hypertrophied hearts is a likely driver of induced cellular heterogeneity.

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