Ultrasound-gated computed tomography coronary angiography: Development of ultrasound transducers with improved

Stephan Strassle Rojas1, Graham C Collins2, Srini Tridandapani3

  • 1Department of Electrical and Computer Engineering, Georgia Institute of Technology, Atlanta, GA, USA.

Medical Physics
|June 4, 2021
PubMed

Insights

Researchers developed a CT-compatible ultrasound transducer to improve cardiac imaging. This new transducer offers similar performance to conventional ones while reducing artifacts, potentially enhancing coronary artery disease diagnosis.

Area of Science:

  • Biomedical Engineering
  • Medical Imaging
  • Cardiovascular Diagnostics

Background:

  • Coronary artery disease (CAD) diagnosis relies on invasive catheter coronary angiography (CCA).
  • Non-invasive computed tomography coronary angiography (CTCA) requires precise cardiac gating during quiescent periods.
  • Current gating methods (retrospective and prospective) have limitations including high radiation dose or non-diagnostic scans.
  • Ultrasound (US) can indicate cardiac quiescence but conventional transducers cause CT artifacts.

Purpose of the Study:

  • To develop a proof-of-concept CT-compatible ultrasound array transducer for integrated US-CTCA systems.
  • To address artifact issues caused by conventional ultrasound transducers in CT scans.
  • To improve cardiac quiescence detection for more accurate CTCA gating.

Main Methods:

  • Tested alternative materials for acoustic backings to reduce radiopacity.
  • Simulated transducer designs using aluminum oxide in an epoxy matrix.
  • Fabricated and characterized single-element transducers (2.5 MHz) using micro-CT, acoustic, and radiographic testing.
  • Developed and evaluated a cardiac phased array transducer with improved CT-compatibility.

Main Results:

  • Identified an acoustic backing with radiopacity over an order of magnitude lower (1008 HU) than conventional backings (24,000 HU).
  • Developed transducers achieved fractional bandwidths of 51-56% and signal-to-noise ratios (SNR) of 10.4-14.7 dB.
  • The CT-compatible array demonstrated a penetration depth greater than 10 cm in phantom and in vivo imaging.

Conclusions:

  • Successfully developed the first CT-compatible ultrasound transducer.
  • The new transducer shows improved radiographic compatibility with comparable US imaging performance (SNR, bandwidth, penetration).
  • This CT-compatible US transducer can potentially improve CTCA gating, reducing non-diagnostic scans and radiation exposure.
Abstract

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