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Published on: November 20, 2016
Progression from compensated hypertrophy to failure in the pressure-overloaded human heart: structural deterioration
Stefan Hein1, Eyal Arnon, Sawa Kostin
1Kerckhoff-Clinic, Department of Thoracic and Cardiovascular Surgery, Bad Nauheim, Germany. s.hein@kerckhoff.mpg.de
Insights
Heart failure progression involves structural changes like fibrosis and cell death, not just hypertrophy. Myocyte degeneration and cell loss, particularly via autophagy and oncosis, significantly drive left ventricular systolic dysfunction.
Area of Science:
- Cardiovascular Biology
- Pathology
- Cell Biology
Background:
- The transition from compensated cardiac hypertrophy to heart failure (HF) remains incompletely understood.
- Investigating patients with valvular aortic stenosis and varying left ventricular (LV) systolic dysfunction provides insight into HF progression.
Purpose of the Study:
- To test the hypothesis that structural remodeling and cell death contribute to the progression of heart failure.
- To correlate structural changes with left ventricular ejection fraction (EF) in patients with aortic stenosis.
Main Methods:
- Analysis of LV myectomies from patients with isolated valvular aortic stenosis and differing EF levels (high, moderate, low) compared to controls.
- Quantification of myocyte hypertrophy, nuclear DNA and Sc-35 content, fibrosis, and various cell death pathways (autophagy, oncosis, apoptosis).
Main Results:
- Myocyte hypertrophy was associated with increased nuclear DNA and splicing factor content.
- Fibrosis and myocyte degeneration significantly increased with declining EF, correlating with ACE and TGF-beta1 upregulation.
- Cell loss, primarily through autophagy and oncosis, increased substantially with worsening LV systolic dysfunction.
Conclusions:
- Structural remodeling, including fibrosis and myocyte degeneration, alongside cell loss, drives the progression to heart failure.
- Hypertrophy involving DNA synthesis and transcription plays a compensatory role.
- Autophagy and oncosis are key mechanisms of cell death contributing to left ventricular systolic dysfunction progression.
Background:
The progression of compensated hypertrophy to heart failure (HF) is still debated. We investigated patients with isolated valvular aortic stenosis and differing degrees of left ventricular (LV) systolic dysfunction to test the hypothesis that structural remodeling, as well as cell death, contributes to the transition to HF.
Methods And Results:
Structural alterations were studied in LV myectomies from 3 groups of patients (group 1: ejection fraction [EF] >50%, n=12; group 2: EF 30% to 50%, n=12; group 3: EF <30%, n=10) undergoing aortic valve replacement. Control patients were patients with mitral valve stenosis but normal LV (n=6). Myocyte hypertrophy was accompanied by increased nuclear DNA and Sc-35 (splicing factor) content. ACE and TGF-beta1 were upregulated correlating with fibrosis, which increased 2.3-, 2.2-, and 3.2-fold over control in the 3 groups. Myocyte degeneration increased 10, 22, and 32 times over control. A significant correlation exists between EF and myocyte degeneration or fibrosis. Ubiquitin-related autophagic cell death was 0.5 per thousand in control and group 1, 1.05 in group 2, and 6.05 per thousand in group 3. Death by oncosis was 0 per thousand in control, 3 per thousand in group 1, and increased to 5 per thousand (groups 2 and 3). Apoptosis was not detectable in control and group 3, but it was present at 0.02 per thousand in group 1 and 0.01 per thousand in group 2. Cardiomyocyte mitosis was never observed.
Conclusions:
These structure-function correlations confirm the hypothesis that transition to HF occurs by fibrosis and myocyte degeneration partially compensated by hypertrophy involving DNA synthesis and transcription. Cell loss, mainly by autophagy and oncosis, contributes significantly to the progression of LV systolic dysfunction.
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