Interventional heart wall motion analysis with cardiac C-arm CT systems
Kerstin Müller1, Andreas K Maier, Yefeng Zheng
1Department of Computer Science, Pattern Recognition Lab, Friedrich-Alexander-Universität Erlangen-Nürnberg, Martensstr. 3, D-91058 Erlangen, Germany. Erlangen Graduate School in Advanced Optical Technologies (SAOT), Paul-Gordan-Str. 6, D-91052 Erlangen, Germany.
Insights
This study introduces a novel framework for analyzing left ventricular (LV) dynamics in 4D directly within the catheter lab using C-arm CT data. The tool quantifies ventricular dyssynchrony and differentiates pathological from normal myocardium.
Area of Science:
- Medical Imaging
- Cardiovascular Physiology
- Biomedical Engineering
Background:
- Current catheter lab imaging (C-arm systems) limits quantitative 3D/4D left ventricular (LV) dynamics analysis.
- Myocardial wall analysis relies on 2D images or pre-procedural 3D/4D imaging, hindering real-time assessment.
Purpose of the Study:
- To develop and validate a framework for direct 4D LV wall motion analysis in the catheter lab.
- To enable real-time detection of ventricular dyssynchrony using C-arm CT data.
- To transfer established quantitative LV dynamics features to C-arm CT imaging.
Main Methods:
- Generation of dynamic 3D LV surface models from 2D C-arm projection images.
- Application of quantitative features: ejection fraction, 3D fractional shortening, and phase to maximal contraction (ϕi, max).
- Evaluation using simulated phantom data and eight clinical patient datasets.
Main Results:
- The framework successfully generates 4D LV models and detects ventricular dyssynchrony.
- Quantitative features were adapted and applied to C-arm CT data.
- Initial clinical results show promising performance in identifying regional myocardial dysfunction.
Conclusions:
- The developed framework enables direct 4D LV dynamics analysis in the catheter lab.
- This tool can serve as an indicator of LV dyssynchrony and differentiate pathological myocardium.
- Further clinical validation in larger studies is warranted.
Abstract:
Today, quantitative analysis of three-dimensional (3D) dynamics of the left ventricle (LV) cannot be performed directly in the catheter lab using a current angiographic C-arm system, which is the workhorse imaging modality for cardiac interventions. Therefore, myocardial wall analysis is completely based on the 2D angiographic images or pre-interventional 3D/4D imaging. In this paper, we present a complete framework to study the ventricular wall motion in 4D (3D+t) directly in the catheter lab. From the acquired 2D projection images, a dynamic 3D surface model of the LV is generated, which is then used to detect ventricular dyssynchrony. Different quantitative features to evaluate LV dynamics known from other modalities (ultrasound, magnetic resonance imaging) are transferred to the C-arm CT data. We use the ejection fraction, the systolic dyssynchrony index a 3D fractional shortening and the phase to maximal contraction (ϕi, max) to determine an indicator of LV dyssynchrony and to discriminate regionally pathological from normal myocardium. The proposed analysis tool was evaluated on simulated phantom LV data with and without pathological wall dysfunctions. The LV data used is publicly available online at https://conrad.stanford.edu/data/heart. In addition, the presented framework was tested on eight clinical patient data sets. The first clinical results demonstrate promising performance of the proposed analysis tool and encourage the application of the presented framework to a larger study in clinical practice.
More Related Videos
08:10Estimating Bilateral Atrial Function by Cardiovascular Magnetic Resonance Feature Tracking in Patients with Paroxysmal Atrial Fibrillation
Published on: July 20, 2022
10:17Real-Time Cardiac Mapping with a Noninvasive Imageless Electrocardiographic Imaging System
Published on: April 11, 2025
Related Concept Videos
Imaging Studies for Cardiovascular System V: CT
Imaging Studies for Cardiovascular System I:Echocardiography
Indications: Echocardiography is utilized to diagnose heart failure, valve disorders, and myocardial infarction. It also assesses cardiac structures' size, shape, and motion,...
Imaging Studies for Cardiovascular System IV: CMRI
