Myocardial Tissue Characterization in Patients with Hypertensive Crisis, Positive Troponin, and Unobstructed Coronary

Mohammed A Talle1,2, Anton F Doubell1, Pieter-Paul S Robbertse1

  • 1Division of Cardiology, Department of Medicine, Faculty of Medicine and Health Sciences, Stellenbosch University and Tygerberg Hospital, Cape Town 7505, South Africa.

PubMed

Insights

Hypertensive crisis with elevated troponin shows myocardial injury. Cardiac magnetic resonance (CMR) revealed longer T2 relaxation times and higher extracellular volume (ECV), indicating edema and fibrosis, aiding risk stratification.

Area of Science:

  • Cardiology
  • Medical Imaging
  • Biomarkers

Background:

  • Hypertensive crisis can cause cardiac troponin elevation despite unobstructed coronary arteries.
  • Characterizing myocardial tissue in these patients is crucial for understanding pathophysiology and prognosis.
  • Cardiac magnetic resonance (CMR) imaging offers advanced tissue characterization capabilities.

Purpose of the Study:

  • To utilize CMR imaging to characterize myocardial tissue in patients experiencing hypertensive crisis with elevated cardiac troponin and unobstructed coronary arteries.
  • To compare imaging biomarkers and tissue characteristics between troponin-positive and troponin-negative hypertensive crisis patients.
  • To identify CMR-derived predictors of troponin positivity in hypertensive crisis.

Main Methods:

  • Nineteen patients with hypertensive crisis, elevated troponin, and coronary artery stenosis <50% were enrolled.
  • Twenty-four troponin-negative hypertensive crisis patients served as controls.
  • All participants underwent 1.5 Tesla CMR imaging, including T2-weighted imaging, native T1 mapping, and late gadolinium enhancement (LGE).

Main Results:

  • The troponin-positive group exhibited longer T2 relaxation times and higher extracellular volume (ECV) compared to controls.
  • Late gadolinium enhancement (LGE) was more prevalent in the troponin-positive group, with a significant portion showing non-infarct patterns.
  • T2 relaxation time and ECV were independently associated with troponin positivity and predicted it, with left ventricular volumes being the strongest predictors.

Conclusions:

  • Increased T2 relaxation time and ECV in troponin-positive hypertensive crisis patients suggest myocardial injury with edema and potential fibrosis/necrosis.
  • CMR biomarkers, particularly T2 relaxation time and ECV, are valuable for risk stratification and prognostication in hypertensive crisis.
  • These findings highlight the utility of advanced CMR techniques in differentiating causes of troponin elevation in hypertensive emergencies.

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