Myocardial interatrial septum loses its epithelial organization by mesenchymal influence. Structural and

H Arrechedera1, M Strauss, C Argüello

  • 1Department of Cellular Biology, Central University of Venezuela, Caracas, Venezuela.

Journal of Submicroscopic Cytology and Pathology
|April 8, 1998
PubMed

Insights

During atrial septation, cardiac myocytes transform and migrate. This study reveals how these cells change their structure and behavior to integrate into developing endocardial cushions.

Area of Science:

  • Developmental Biology
  • Cardiac Development
  • Cellular Biology

Background:

  • Atrial septation involves fusion of the septum primum with endocardial cushions.
  • Myocardial-mesenchymal interactions are critical during cardiac development.
  • Understanding cellular events in these interactions is key to comprehending heart formation.

Purpose of the Study:

  • To investigate the cellular and ultrastructural changes during myocardial-mesenchymal interactions in atrial septation.
  • To elucidate the migratory behavior and phenotypic transformation of myocytes in this context.
  • To identify the role of endocardial cushions in directing these cellular events.

Main Methods:

  • Structural, ultrastructural, and histochemical analyses were employed.
  • Developmental stages from the fourth day were examined.
  • Cellular morphology, tissue organization, and intercellular junctions were assessed.

Main Results:

  • Distal septal myocytes lose epithelial characteristics, becoming loosely organized.
  • Myocytes exhibit features of migratory cells, moving into mesenchymal tissue.
  • Changes include basal membrane disruption, reduced desmosomes, and acquisition of a secretory phenotype with vesicles.

Conclusions:

  • Mesenchymal endocardial cushions and extracellular matrix guide myocyte dissociation and migration.
  • This represents a significant example of cellular phenotypic transformation during cardiac development.
  • Similar events occur in the atrioventricular canal, highlighting a conserved mechanism.

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