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Updated: Apr 1, 2026

Retrospective Cardiac Gating with A Prototype Small-Animal X-ray Computed Tomograph
Published on: February 21, 2025
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.
Abstract:
Determination of the cardiorespiratory phase of the heart has numerous applications during cardiac imaging. In this article we propose a novel view-angle independent near-real time cardiorespiratory motion gating and coronary sinus (CS) catheter tracking technique for x-ray fluoroscopy images that are used to guide cardiac electrophysiology procedures. The method is based on learning CS catheter motion using principal component analysis and then applying the derived motion model to unseen images taken at arbitrary projections, using the epipolar constraint. This method is also able to track the CS catheter throughout the x-ray images in any arbitrary subsequent view. We also demonstrate the clinical application of our model on rotational angiography sequences. We validated our technique in normal and very low dose phantom and clinical datasets. For the normal dose clinical images we established average systole, end-expiration and end-inspiration gating success rates of 100%, 85.7%, and 92.3%, respectively. For very low dose applications, the technique was able to track the CS catheter with median errors not exceeding 1 mm for all tracked electrodes. Average gating success rates of 80.3%, 71.4%, and 69.2% were established for the application of the technique on clinical datasets, even with a dose reduction of more than 10 times. In rotational sequences at normal dose, CS tracking median errors were within 1.2 mm for all electrodes, and the gating success rate was 100%, for view angles from RAO 90° to LAO 90°. This view-angle independent technique can extract clinically useful cardiorespiratory motion information using x-ray doses significantly lower than those currently used in clinical practice.
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