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Updated: Aug 6, 2026

Murine Fetal Echocardiography
Published on: February 15, 2013
Colour flow imaging in the diagnosis of multiple ventricular septal defects
G R Sutherland1, J H Smyllie, B C Ogilvie
1Department of Paediatric Cardiology, Wessex Cardiothoracic Unit, Southampton General Hospital.
Insights
Colour flow imaging is the most accurate method for diagnosing multiple ventricular septal defects, especially restrictive types. Combining it with left ventriculography offers the highest diagnostic accuracy for these complex congenital heart conditions.
Area of Science:
- Cardiology
- Medical Imaging
- Pediatric Congenital Heart Disease
Background:
- Multiple ventricular septal defects (VSDs) present diagnostic challenges in congenital heart disease.
- Accurate identification of VSDs is crucial for effective treatment planning and patient outcomes.
Purpose of the Study:
- To compare the diagnostic accuracy of various imaging techniques for multiple VSDs.
- To evaluate the benefits and limitations of cross-sectional echocardiography, Doppler, colour flow imaging, and left ventriculography.
Main Methods:
- Thirty-one patients with multiple VSDs underwent cross-sectional echocardiography, Doppler, colour flow imaging, and left ventriculography.
- Defects were confirmed intraoperatively in 23 patients.
- Patients were categorized into restrictive and non-restrictive VSD groups based on pressure gradients.
Main Results:
- Colour flow imaging (77%) and left ventriculography (65%) were more accurate than conventional echocardiography/Doppler (39%) for multiple VSDs.
- Colour flow imaging excelled in restrictive VSDs (89%) but was less accurate in non-restrictive VSDs (62%).
- Left ventriculography showed similar trends (83% restrictive, 38% non-restrictive).
Conclusions:
- Colour flow imaging is the most accurate single technique for diagnosing multiple VSDs.
- Both colour flow imaging and left ventriculography have limitations in non-restrictive VSDs.
- Combining colour flow imaging and left ventriculography yields the highest overall diagnostic accuracy.
Abstract:
Thirty one patients with multiple ventricular septal defects were studied by cross sectional echocardiography, conventional pulsed and continuous wave Doppler, colour flow imaging, and left ventriculography to determine the relative diagnostic benefits and pitfalls of each technique. The patients studied had a wide range of congenital heart defects with 19 patients having isolated multiple ventricular septal defects, three with associated tetralogy of Fallot, five with double outlet right ventricle, three with complete transposition and ventricular septal defect, and one with a complete atrioventricular septal defect. In 23 patients the defects were inspected at operation. Cross sectional imaging with integrated pulsed and continuous wave Doppler correctly identified multiple defects in only 12 (39%) patients. In contrast, colour flow imaging was accurate in 24 (77%) patients and left ventriculography in 20 (65%) patients. When patients were subdivided on the basis of relative peak systolic ventricular pressures into restrictive defects (18 patients) and non-restrictive defects (13 patients) the diagnostic value of colour flow imaging was different for each group. Colour flow mapping correctly identified multiple ventricular septal defects in 16/18 (89%) patients with restrictive defects but only 8/13 (62%) with non-restrictive defects. The comparative diagnostic accuracy of left ventriculography was 15/18 (83%) in the restrictive group and 5/13 (38%) in the non-restrictive group. Colour flow imaging was the single investigative technique with the greatest diagnostic accuracy in the diagnosis of multiple ventricular septal defects. It failed to be consistently accurate in defined subgroups with non-restrictive defects as did left ventriculography. The greatest overall diagnostic accuracy in this series was obtained when both colour flow imaging and ventriculography techniques were used in combination in a complementary fashion.
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