Coronary microvascular rarefaction and myocardial fibrosis in heart failure with preserved ejection fraction

Selma F Mohammed1, Saad Hussain2, Sultan A Mirzoyev2

  • 1From the Division of Cardiovascular Diseases (S.F.M., S.H., M.M.R.), Mayo Graduate School (S.F.M.), Mayo Medical School (S.A.M.), and Division of Anatomic Pathology (W.D.E., J.J.M.), Mayo Clinic, Rochester, MN. mohammed.selma@mayo.edu.

Circulation
|January 2, 2015
PubMed

Insights

Heart failure with preserved ejection fraction (HFpEF) is associated with increased cardiac hypertrophy, coronary artery disease (CAD), and myocardial fibrosis. These factors contribute to diastolic dysfunction and impaired cardiac reserve in HFpEF patients.

Area of Science:

  • Cardiology
  • Pathology
  • Medical Research

Background:

  • Characterizing myocardial structural changes in heart failure with preserved ejection fraction (HFpEF) is challenging due to limited human cardiac tissue availability.
  • Cardiac hypertrophy, coronary artery disease (CAD), coronary microvascular rarefaction, and myocardial fibrosis are potential contributors to HFpEF pathophysiology.

Purpose of the Study:

  • To investigate and quantify myocardial structural differences, including cardiac hypertrophy, coronary artery disease (CAD), coronary microvascular rarefaction, and myocardial fibrosis, in patients with HFpEF compared to controls.

Main Methods:

  • Autopsy data from 124 HFpEF patients and 104 controls were analyzed.
  • Whole-field digital microscopy and automated algorithms quantified microvascular density (MVD) and myocardial fibrosis in left ventricular sections.
  • Heart weight and CAD severity were extracted from autopsy reports.

Main Results:

  • HFpEF patients exhibited significantly heavier hearts, more severe CAD, increased left ventricular fibrosis, and lower microvascular density (MVD) compared to controls (P<0.0001 for all).
  • Myocardial fibrosis correlated inversely with MVD in both HFpEF patients and controls.
  • Adjusting for MVD reduced the observed differences in fibrosis between groups.

Conclusions:

  • Patients with HFpEF demonstrate greater cardiac hypertrophy, epicardial CAD, coronary microvascular rarefaction, and myocardial fibrosis than control subjects.
  • These structural alterations likely contribute to the characteristic left ventricular diastolic dysfunction and impaired cardiac reserve in HFpEF.
  • The findings underscore the complex structural remodeling involved in HFpEF.
Abstract

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