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Published on: December 13, 2019
Echocardiographic nomograms for chamber diameters and areas in Caucasian children
Massimiliano Cantinotti1, Marco Scalese2, Bruno Murzi1
1Fondazione G. Monasterio CNR-Regione Toscana, Massa and Pisa, Italy.
Insights
This study establishes pediatric echocardiographic nomograms for cardiac chamber dimensions in healthy children. The findings provide essential reference values, addressing a gap in current pediatric cardiology resources.
Area of Science:
- Pediatric Cardiology
- Echocardiography
- Biometry
Background:
- Quantitative evaluation of cardiac chamber dimensions is crucial in pediatric echocardiography.
- Existing nomograms for pediatric cardiac structures are limited.
- This study aimed to create reliable echocardiographic nomograms for cardiac chamber dimensions in children.
Purpose of the Study:
- To establish reliable echocardiographic nomograms for cardiac chamber diameters and areas.
- To provide reference values for a wide population of healthy children.
- To address the limitations in current pediatric echocardiographic nomograms.
Main Methods:
- 1,091 healthy Caucasian Italian children (0 days to 17 years) were enrolled.
- Twenty-two two-dimensional and M-mode echocardiographic measurements were performed.
- The Haycock formula was used to calculate body surface area (BSA) and develop predictive models.
Main Results:
- The Haycock formula provided the best fit for relating echocardiographic measurements to BSA.
- Predicted values (mean ± 2 SDs) were presented for a given BSA.
- Confounding factors like gender and prematurity did not significantly affect most measurements.
Conclusions:
- Echocardiographic reference values for chamber area and diameters were established from a large pediatric cohort.
- These data help fill a gap in pediatric echocardiographic nomograms.
- Further research is needed to validate these findings and expand to other parameters and ethnicities.
Background:
Although a quantitative evaluation of cardiac chamber dimensions in pediatric echocardiography is often important, nomograms for these structures are limited. The aim of this study was to establish reliable echocardiographic nomograms of cardiac chamber diameters and areas in a wide population of children.
Methods:
A total of 1,091 Caucasian Italian healthy children (age range, 0 days to 17 years; 44.8% female) with body surface areas (BSAs) ranging from 0.12 to 1.8 m(2) were prospectively enrolled. Twenty-two two-dimensional and M-mode measurements of atrial and ventricular chamber diameters and areas were performed. Models using linear, logarithmic, exponential, and square-root relationships were tested. Heteroscedasticity was tested by the White test and the Breusch-Pagan test. Age, weight, height, and BSA, calculated by the Haycock formula, were used as the independent variables in different analyses to predict the mean value of each echocardiographic measurement. The influence of various confounders, including gender, type of delivery, prematurity, and interobserver variability, was also evaluated. Structured Z scores were then computed.
Results:
The Haycock formula provided the best fit and was used when presenting data as predicted values (mean ± 2 SDs) for a given BSA and within equations relating echocardiographic measurements to BSA. Confounders were not included in the final models, because they did not show significant effects for most of the measurements.
Conclusions:
Echocardiographic reference values are presented for chamber area and diameters, derived from a large population of healthy children. These data partly cover a gap in actual pediatric echocardiographic nomograms. Further studies are required to reinforce these data, as well as to evaluate other parameters and ethnicities.
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