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The effect of postinfarction intramyocardial hemorrhage on transverse relaxation time

C S Lotan1, S K Miller, G B Cranney

  • 1Department of Medicine, University of Alabama, Birmingham 35294.

Insights

Areas of decreased signal intensity in myocardial infarction (MI) NMR imaging are caused by intramyocardial hemorrhage. This finding helps in noninvasively detecting and quantifying hemorrhage in infarcted regions.

Area of Science:

  • Cardiovascular Imaging
  • Magnetic Resonance Imaging
  • Pathology

Background:

  • 1H NMR imaging detects myocardial infarction (MI) as increased signal intensity (SI).
  • Decreased SI zones within or around MI areas are observed at high magnetic fields.
  • The cause of these decreased SI zones requires investigation.

Purpose of the Study:

  • To determine the cause of decreased SI in NMR images of myocardial infarction.
  • To investigate the relationship between decreased SI and intramyocardial hemorrhage.
  • To assess the utility of NMR imaging for detecting and quantifying intramyocardial hemorrhage.

Main Methods:

  • Ex vivo spin-echo 1H NMR imaging at 1.5 T was performed on dog hearts with 72-hour coronary artery occlusion.
  • Gross inspection and histological assessment of sliced myocardium were conducted.
  • T2 relaxation times were calculated and analyzed using monoexponential and biexponential models.

Main Results:

  • Increased SI zones consistent with infarction were observed in all dogs.
  • Decreased SI zones, similar to normal myocardium, were found in seven dogs.
  • Histology revealed hemorrhage in the decreased SI zones.
  • T2 values were significantly shorter in hemorrhagic infarct zones (59 ms) compared to non-hemorrhagic zones (73 ms).
  • Biexponential analysis revealed an intrinsic T2 of 43 ms for water protons affected by hemorrhage.

Conclusions:

  • Decreased SI in NMR images of MI is caused by intramyocardial hemorrhage.
  • The paramagnetic effect of deoxyhemoglobin in hemorrhage shortens T2 relaxation times.
  • NMR imaging can potentially detect and quantify intramyocardial hemorrhage noninvasively.

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