Morphometric and Molecular Interplay in Hypertension-Induced Cardiac Remodeling with an Emphasis on the Potential

Lyubomir Gaydarski1, Kristina Petrova1, Stancho Stanchev1

  • 1Department of Anatomy, Histology and Embryology, Medical University of Sofia, 1431 Sofia, Bulgaria.

Insights

Hypertension damages the heart by altering blood vessels and causing fibrosis. Targeting pathways like apelinergic and nitric oxide may offer new treatments for hypertensive heart disease.

Area of Science:

  • Cardiovascular Biology
  • Molecular Medicine
  • Pathophysiology

Background:

  • Hypertension induces cardiac remodeling, leading to ventricular hypertrophy, fibrosis, impaired angiogenesis, and dysfunction.
  • Key molecular and cellular mechanisms drive these changes, impacting myocardial structure and function.

Purpose of the Study:

  • To review histomorphometric changes in hypertensive myocardium, focusing on capillary density, fibrosis, and mast cells.
  • To explore the roles of the apelinergic system, VEGF/VEGFR, and NO/NOS signaling in hypertensive heart disease (HHD).

Main Methods:

  • Review of histomorphometric changes in capillary density, fibrosis, and mast cells.
  • Analysis of regulatory systems including apelinergic, VEGF/VEGFR, and NO/NOS signaling pathways.
  • Discussion of therapeutic targets and interventions for HHD.

Main Results:

  • Capillary rarefaction is a hallmark of HHD, contributing to ischemia and fibrosis.
  • Myocardial fibrosis involves collagen deposition, influenced by FGF-2 and TGF-β.
  • The apelinergic system shows promise for its vasodilatory and anti-fibrotic properties.
  • VEGF signaling has a dual role, and NO/NOS pathway dysregulation leads to endothelial dysfunction.

Conclusions:

  • Targeting capillary density and fibrosis holds potential for improving cardiac outcomes in HHD.
  • The apelinergic system presents a promising therapeutic avenue, though human studies are limited.
  • Restoring NO bioavailability and careful modulation of VEGF signaling are potential strategies.
  • A multidisciplinary approach is needed for personalized HHD treatments.

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