Image-based view-angle independent cardiorespiratory motion gating and coronary sinus catheter tracking for

Maria Panayiotou1, Kawal S Rhode, Andrew P King

  • 1Division of Imaging Sciences and Biomedical Engineering, King's College London, London SE1 7EH, UK.

Insights

This study introduces a new method for tracking coronary sinus (CS) catheters during cardiac imaging, enabling precise cardiorespiratory gating. The technique works independently of viewing angle and significantly reduces X-ray dose.

Area of Science:

  • Medical Imaging
  • Biomedical Engineering
  • Cardiology

Background:

  • Accurate cardiorespiratory phase determination is crucial for cardiac imaging.
  • Guiding cardiac electrophysiology procedures requires reliable catheter tracking.

Purpose of the Study:

  • To develop a novel, view-angle independent technique for near-real-time cardiorespiratory motion gating and coronary sinus (CS) catheter tracking.
  • To enable accurate guidance during cardiac electrophysiology procedures using X-ray fluoroscopy.

Main Methods:

  • Utilized principal component analysis to learn CS catheter motion from X-ray fluoroscopy images.
  • Applied an epipolar constraint to generalize the motion model to arbitrary projections and subsequent views.
  • Validated the technique on phantom and clinical datasets, including rotational angiography sequences.

Main Results:

  • Achieved high gating success rates (e.g., 100% systole, 92.3% end-inspiration) at normal X-ray doses.
  • Demonstrated accurate CS catheter tracking with median errors under 1 mm even at very low doses (over 10x reduction).
  • Maintained 100% gating success and tracking accuracy within 1.2 mm median error in rotational sequences across wide view angles.

Conclusions:

  • The proposed view-angle independent technique effectively extracts cardiorespiratory motion information.
  • This method allows for clinically useful gating and tracking at significantly reduced X-ray doses compared to current practices.
  • The technique holds promise for improving safety and efficiency in cardiac electrophysiology procedures.

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