Cell-Specific Pathways Supporting Persistent Fibrosis in Heart Failure

Stephen D Farris1, Creighton Don1, Deri Helterline1

  • 1University of Washington, Department of Medicine, Division of Cardiology, Seattle, Washington.

Insights

Left ventricular assist device (LVAD) therapy unloads the heart but does not improve capillary density or fibrosis in end-stage heart failure (HF). However, LVADs decrease fibroblast collagen expression and alter macrophage signaling, suggesting ongoing inflammation may impede myocardial recovery.

Area of Science:

  • Cardiology
  • Biomedical Engineering
  • Translational Medicine

Background:

  • Limited data exist on human myocardium histology and noncardiomyocyte function in end-stage heart failure (HF).
  • Understanding cellular changes post-left ventricular assist device (LVAD) is crucial for identifying recovery mechanisms.

Purpose of the Study:

  • To investigate noncardiomyocyte cellular activity in end-stage HF patients after LVAD-induced cardiac remodeling.
  • To identify mechanisms that may impede myocardial recovery despite LVAD support.

Main Methods:

  • Myocardium samples were collected from patients undergoing LVAD placement and/or heart transplantation.
  • Histological analyses and quantitative reverse transcription polymerase chain reaction (RT-PCR) were performed on isolated mononuclear cells.
  • Echocardiographic and catheterization data were acquired during routine care.

Main Results:

  • LVAD unloading for 8 months did not alter capillary density, cardiac fibrosis, or macrophage density.
  • Fibroblast-specific collagen expression significantly decreased (16.7-fold) post-LVAD.
  • A shift in macrophage signaling away from pro-fibrotic pathways was observed.

Conclusions:

  • Despite effective LVAD unloading, key structural components like capillary density and fibrosis remain unchanged.
  • Decreased fibroblast collagen expression and altered macrophage polarization may be linked to reduced mechanical stretch and inflammation.
  • Persistent myocardial dysfunction in HF may stem from ongoing inflammation and inadequate extracellular matrix remodeling, highlighting targets for future therapies.
Abstract

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