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Published on: December 13, 2019
Reference data for left ventricular filling and atrial function in children using cardiovascular magnetic resonance
Christopher C Henderson1, Kristen George-Durrett2, Sandra Kikano2
1Department of Pediatrics, Vanderbilt University Medical Center, Nashville, TN, USA.
Insights
A new, faster method for analyzing left ventricular (LV) diastolic function using cardiovascular magnetic resonance (CMR) was developed. This compressed method provides similar results to the standard approach, potentially improving clinical reporting of diastolic dysfunction.
Area of Science:
- Pediatric cardiology
- Cardiovascular imaging
- Diastolic function assessment
Background:
- Diastolic dysfunction is linked to poor outcomes in pediatric diseases.
- Cardiovascular magnetic resonance (CMR) assesses left ventricular (LV) diastolic function via filling curves and left atrial (LA) volumes.
- Current standard methods for LV filling curves are time-consuming and lack normative data.
Purpose of the Study:
- Compare a rapid, compressed method for LV filling curves against the standard method.
- Establish normative data for LV filling curves and LA volumes/function using CMR in healthy children.
- Evaluate the clinical utility of the compressed method for diastolic function assessment.
Main Methods:
- Ninety-six healthy pediatric subjects underwent CMR.
- LV filling curves were generated using a compressed method (fewer slices) and a standard method (all slices).
- Diastolic and systolic function indices, and LA volumes were measured; reproducibility and regression analyses were performed.
Main Results:
- The compressed method was significantly faster (6.1 min vs. 12.5 min) than the standard method.
- Both methods showed strong to moderate correlation for all measured metrics.
- Body surface area (BSA) was the primary determinant of LV filling curve parameters.
Conclusions:
- Reference values for LV filling metrics and LA volumes in pediatric subjects are provided.
- The compressed CMR method is a faster alternative to the standard method, yielding comparable results.
- This rapid method may enhance the routine clinical use of LV filling analysis in CMR.
Background:
Diastolic dysfunction is associated with morbidity and mortality in multiple pediatric disease processes. Cardiovascular magnetic resonance (CMR) provides a non-invasive method of studying left ventricular (LV) diastolic dysfunction through the assessment of LV filling curves and left atrial (LA) volume and function. However, there are no normative data for LV filling curves and the standard method is time-intensive. This study aims to compare an alternate, more rapid method of obtaining LV filling curves to standard methodology and report normative CMR diastolic function data for LV filling curves and LA volumes and function.
Methods:
Ninety-six healthy pediatric subjects (14.3 ± 3.4 years) with normal CMR defined by normal biventricular size and systolic function without late gadolinium enhancement were included. LV filling curves were generated by removing basal slices without myocardium present throughout the cardiac cycle and apical slices with poor endocardial delineation (compressed method), then re-generated including every phase of myocardium from apex to base (standard method). Indices of diastolic function included peak filling rate and time to peak filling. Systolic metrics included peak ejection rate and time to peak ejection. Both peak ejection and peak filling rates were indexed to end-diastolic volume. LA maximum, minimum and pre-contraction volumes were calculated using a biplane method. Inter-and intra-observer variability were assessed with intraclass correlation coefficient. Multivariable linear regression was used to assess the effects of body surface area (BSA), gender and age on metrics of diastolic function.
Results:
BSA had the largest effect on LV filling curves. Normal LV filling data are reported for both compressed and standard methods. The time to perform the compressed method was significantly shorter than the standard method (median 6.1 min vs. 12.5 min, p < 0.001). Both methods had strong to moderate correlation for all metrics. Intra-observer reproducibility was moderate to high for all LV filling and LA metrics except for time to peak ejection and peak filling.
Conclusions:
We report reference values for LV filling metrics and LA volumes. The compressed method is more rapid and produces similar results to standard methodology, which may facilitate the use of LV filling in clinical CMR reporting.
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