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Murine Echocardiography of Left Atrium, Aorta, and Pulmonary Artery
Published on: February 20, 2017
Signal-to-noise of linear and volume measures of left ventricular and left atrial size
Yunbo Duan1, Nezar Amir2, Guy P Armstrong3
1Auckland University School of Medicine, Auckland, New Zealand.
Insights
Linear echocardiogram measurements of left ventricular size offer better signal-to-noise ratio than volume estimates. This suggests linear dimensions are more reliable for tracking true changes in heart chamber size over time.
Area of Science:
- Cardiology
- Medical Imaging
- Biostatistics
Background:
- Serial echocardiograms are crucial for managing cardiac conditions like mitral and aortic regurgitation.
- Distinguishing true physiological changes from measurement noise is essential for accurate patient monitoring.
- Current methods for assessing chamber size may not optimally balance sensitivity to change with minimal spurious variation.
Purpose of the Study:
- To compare linear chamber dimensions versus volume estimates for assessing cardiac chamber size in serial echocardiograms.
- To determine which measurement method provides a better signal-to-noise ratio for detecting true changes.
- To introduce a method for disentangling true changes from noise in serial echocardiographic measurements.
Main Methods:
- Collected serial echocardiogram data for left ventricular (LV) and left atrial (LA) dimensions and volumes.
- Employed linear regression to assess change over time (slope) and quantify noise (standard error of the slope).
- Calculated the signal-to-noise ratio (SNR) as the slope divided by its standard error for each parameter.
Main Results:
- Linear LV size estimates demonstrated a significantly higher SNR than volume estimates in both diastolic (p < 0.001) and systolic (p = 0.035) measurements.
- For the left atrium, no significant difference in SNR was found between linear and volume measures (p = 0.214), potentially due to sample size.
- Across all assessed parameters, numerical SNR values favored linear dimensions over volume estimates.
Conclusions:
- Linear measures of left ventricular size exhibit superior signal-to-noise characteristics compared to volume measures.
- The findings suggest linear dimensions may be more reliable for differentiating true changes from spurious variations in LV size.
- Regression analysis provides a more robust assessment of chamber size changes than relying on single measurements.
Background:
Serial echocardiographic assessments are common in clinical cardiology, e.g., for timing of intervention in mitral and aortic regurgitation. When following patients with serial echocardiograms, each new measurement is a combination of true change and confounding noise. The current investigation compares linear chamber dimensions with volume estimates of chamber size. The aim is to assess which measure is best for serial echocardiograms, when the ideal parameter will be sensitive to change in chamber size and have minimal spurious variation (noise). We present a method that disentangles true change from noise. Linear regression of chamber size against elapsed time gives a slope, being the ability of the method to detect change. Noise is the scatter of individual points away from the trendline, measured as the standard error of the slope. The higher the signal-to-noise ratio (SNR), the more reliably a parameter will distinguish true change from noise.
Methods:
LV and LA parasternal dimensions and apical biplane volumes were obtained from serial clinical echocardiogram reports. Change over time was assessed as the slope of the linear regression line, and noise was assessed as the standard error of the regression slope. Signal-to-noise ratio is the slope divided by its standard error.
Results:
The median number of LV studies was 5 (4-11) for LV over a mean duration of 5.9 ± 3.0 years in 561 patients (diastole) and 386 (systole). The median number of LA studies was 5 (4-11) over a mean duration of 5.3 ± 2.0 years in 137 patients. Linear estimates of LV size had better signal-to-noise than volume estimates (p < 0.001 for diastolic and p = 0.035 for systolic). For the left atrium, the difference was not significant (p = 0.214). This may be due to sample size; the effect size was similar to that for LV systolic size. All three parameters had a numerical value of signal-to-noise that favoured linear dimensions over volumes.
Conclusion:
Linear measures of LV size have better signal-to-noise than volume measures. There was no difference in signal-to-noise between linear and volume measures of LA size, although this may be a Type II error. The use of regression lines may be better than relying on single measurements. Linear dimensions may clarify whether changes in volumes are real or spurious.
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