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December 8, 2021American Journal of Roentgenology57 citations

Epicardial Adipose Tissue Attenuation and Fat Attenuation Index: Phantom Study and In Vivo Measurements With Photon-Counting Detector CT

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VMVictor MergenEREmanuel RiedTAThomas Allmendinger

Key Points

  • To evaluate the impact of varying VMI energy levels on EAT attenuation and FAI measurements.
  • Used anthropomorphic phantoms and PCD CT scanner for imaging.

Structured PICO

How do different virtual monoenergetic image energy levels affect epicardial adipose tissue attenuation and fat attenuation index measurements on photon-counting detector CT?

P
Population
Anthropomorphic phantom at two sizes with a fat insert, and 30 patients (11 women, 19 men; mean age 48 ± 10 years; Agatston score < 60) undergoing ECG-gated unenhanced calcium-scoring scan and contrast-enhanced coronary CTA.
I
Intervention
Photon-counting detector (PCD) CT with virtual monoenergetic image (VMI) reconstructions from 55 to 80 keV at 5-keV increments.
C
Comparator
Conventional energy-integrating detector (EID) CT scanner at 120 kV (for phantom reference).
O
Outcome
Epicardial adipose tissue (EAT) attenuation and Fat Attenuation Index (FAI) measurements.surrogate

In photon-counting detector CT, epicardial adipose tissue attenuation and fat attenuation index are impacted by virtual monoenergetic image energy levels, with 70 keV reconstructions best approximating conventional CT measurements.

Abstract

BACKGROUND. Epicardial adipose tissue (EAT) attenuation is a vascular inflammation marker predictive of adverse cardiac events. The fat attenuation index (FAI) assesses fat attenuation for predefined coronary segments. Photon-counting detector (PCD) CT uses routine virtual monoenergetic image (VMI) reconstructions. VMI energy level may affect EAT attenuation and FAI measurements. OBJECTIVE. The purpose of this article was to assess EAT attenuation and FAI measurements at different monoenergetic energy levels in patients undergoing coronary CTA using a first-generation whole-body dual-source PCD CT scanner. METHODS. An anthropomorphic phantom at two sizes with a fat insert was imaged on a first-generation dual-source PCD CT scanner and, as a reference, on a conventional energy-integrating detector (EID) CT scanner at 120 kV. Thirty patients (11 women, 19 men; mean age, 48 ± 10 years; Agatston score RESULTS. The attenuation of the phantom fat insert was -69 HU for the reference EID CT; the closest attenuation for PCD CT was observed at 70 keV for the small (-69 HU) and large (-70 HU) phantoms. In patients, EAT attenuation increased for unenhanced acquisition from -111 ± 11 HU at 55 keV to -82 ± 9 HU at 80 keV and for contrast-enhanced acquisition from -104 ± 11 HU at 55 keV to -81 ± 9 HU at 80 keV. The mean attenuation difference between unenhanced and contrast-enhanced scans decreased with increasing energy level (from 7 ± 12 HU to 1 ± 10 HU). The FAI increased from -89 ± 8 HU at 55 keV to -77 ± 12 HU at 80 keV for the right coronary artery, -95 ± 11 HU at 55 keV to -85 ± 11 HU at 80 keV for the left anterior descending artery, and -87 ± 10 HU at 55 keV to -80 ± 12 HU at 80 keV for the circumflex artery. CONCLUSION. EAT attenuation and FAI measurements using PCD CT are impacted by VMI energy level and contrast enhancement. Use of VMI reconstruction at 70 keV provides fat attenuation approximating conventional polychromatic measurements. CLINICAL IMPACT. The findings may help standardize evaluation of pericoronary inflammation by PCD CT as a measure of patients' cardiac risk.

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Cite This Study

Mergen et al. (2021) studied this question.

synapsesocial.com/papers/69d56c2375589c71d767cc17https://doi.org/10.2214/ajr.21.26930
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