Intraventricular pressure gradient: A novel tool to assess the post-infarction chronic congestive heart failure

Hussein M El-Husseiny1,2, Eman A Mady3,4, Danfu Ma1,5

  • 1Laboratory of Veterinary Surgery, Department of Veterinary Medicine, Faculty of Agriculture, Tokyo University of Agriculture and Technology, Fuchu-shi, Japan.

Insights

Intraventricular pressure gradient (IVPG) measured by echocardiography shows promise in detecting congestive heart failure (CHF) progression after myocardial infarction (MI). This noninvasive method offers a better prediction tool than conventional echocardiography for chronic heart failure.

Area of Science:

  • Cardiology
  • Biomedical Engineering
  • Medical Imaging

Background:

  • Congestive heart failure (CHF) is a major cause of death, often following myocardial infarction (MI).
  • Current methods like left ventricular end-diastolic pressure (LVEDP) are invasive and limited, while echocardiography struggles to predict CHF progression post-MI.
  • Intraventricular pressure gradient (IVPG) is a sensitive, noninvasive index for cardiac function assessment, but its utility in chronic MI-induced CHF is unexplored.

Purpose of the Study:

  • To evaluate the efficacy of a novel echocardiography-derived index, IVPG, in assessing cardiac function in a rat model of chronic MI with CHF.
  • To investigate the potential of IVPG as a tool to detect and predict CHF progression after chronic MI.

Main Methods:

  • Surgically induced MI in 35 male rats; 15 served as sham controls.
  • Transthoracic conventional and color M-mode echocardiography (CMME) used to measure IVPG six months post-surgery.
  • Hemodynamic, gross pathological, and histological evaluations performed; J-tree cluster analysis used for echocardiographic parameters.

Main Results:

  • Animals clustered into CHF+ (MI/HF+, n=22) and CHF- (n=28) groups, with MI/HF+ showing severe alterations.
  • Basal IVPG significantly increased in the MI/HF+ group; other IVPG measures increased compared to sham.
  • Segmental IVPG measures correlated significantly with anatomical, histological, echocardiographic, and hemodynamic findings (excluding heart rate) and predicted CHF post-MI.

Conclusions:

  • IVPG derived from CMME is a promising noninvasive tool for detecting CHF following chronic MI.
  • IVPG demonstrates a high ability to predict CHF progression, outperforming conventional echocardiography.
  • This novel index offers a valuable approach for assessing cardiac function and disease progression in chronic MI.

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