Cardiac endothelial cell transcriptome in neonatal, adult, and remodeling hearts

Zarha Vermeulen1, Ligia Mateiu2, Lindsey Dugaucquier1

  • 1Laboratory of Physiopharmacology, University of Antwerp , Antwerp , Belgium.

Physiological Genomics
|April 13, 2019
PubMed

Insights

Cardiac microvascular endothelial cells (CMVECs) transform significantly from neonatal to adult stages. Remodeling alters CMVEC gene expression subtly, with some overlap between neonatal and infarcted states.

Area of Science:

  • Cardiovascular Biology
  • Cellular and Molecular Medicine
  • Developmental Biology

Background:

  • Cardiac microvascular endothelial cells (CMVECs) are crucial for heart development and function.
  • Previous studies show CMVEC transcriptomes differ from other endothelial cells, but changes during maturation and remodeling are unexplored.

Purpose of the Study:

  • To investigate transcriptomic changes in CMVECs during postnatal cardiac maturation.
  • To analyze CMVEC gene expression alterations in response to cardiac remodeling after infarction.

Main Methods:

  • Isolation of primary CMVECs from rat hearts using CD31 expression.
  • RNA sequencing to compare gene expression profiles.
  • Analysis of CMVECs from neonatal, adult, and infarcted hearts.

Main Results:

  • Over 6,800 genes were differentially expressed between neonatal and adult CMVECs, indicating significant postnatal transformation.
  • Neonatal CMVECs showed high expression of mitosis-related genes, while adult CMVECs upregulated genes involved in cellular response, signaling, and adhesion.
  • 159 genes were differentially expressed between normal adult and infarcted heart CMVECs, with partial overlap in gene expression patterns observed between neonatal and infarcted states.

Conclusions:

  • CMVECs undergo substantial transcriptomic changes during postnatal development.
  • Cardiac remodeling induces more subtle, yet distinct, transcriptomic shifts in CMVECs compared to the developmental changes.
  • Understanding these dynamic changes is key for addressing heart failure pathophysiology.

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