PubMed Health⌕ Search

Biomedical subjects

Kent Bailey

Publications and source records attributed to Kent Bailey.

2 recordsLinked to original sources

Relation of tissue displacement and strain to invasively determined right ventricular stroke volume.

The role of echocardiography in the clinical assessment of right ventricular (RV) systolic function remains limited. Limited data exist on the potential use of newer techniques for RV function assessment. Conventional echocardiography and tissue Doppler echocardiography (TDE) were performed during right-sided cardiac catheterization in 46 patients. Thermodilution or the Fick-derived RV stroke volume indexed (RVSVI) indexed to body surface area was used as the reference standard. Univariate and multivariate regression analyses were used to test correlations between RVSVI and various echocardiographic and TDE-derived parameters. In a subset of 12 subjects, changes in echocardiographic and TDE variables to reduced afterload from intravenous epoprostenol were measured. TDE-derived RV tissue displacement and systolic strain best predicted the RVSVI (r = 0.63, p = 0.001; r = 0.48, p = 0.002, respectively). The prediction improved after adjustment for tricuspid regurgitation jet vena contracta width (r = 0.74, p < 0.0001; r = 0.60, p < 0.001, respectively). Assuming a RVSVI of > or =30 ml/m(2) as normal, a RV displacement cutoff of 15 mm yielded a sensitivity of 100% and a specificity of 41% for RV dysfunction, and an RV systolic strain cutoff of 20% yielded a sensitivity of 91% and a specificity of 63%. The percentage change of RV systolic displacement correlated well with the percentage change of RVSVI after epoprostenol infusion (r = 0.75, p < 0.001). In conclusion, TDE-derived RV displacement and strain closely correlate with RVSVI and appropriately track load-related changes in RV function. These new parameters may help provide the noninvasive, quantitative assessment of RV function.

Cardiac Catheterization↗

Strain echocardiography tracks dobutamine-induced decrease in regional myocardial perfusion in nonocclusive coronary stenosis.

OBJECTIVES: This study was designed to determine whether strain echocardiography parameters reflect changes in regional myocardial perfusion during dobutamine stress. BACKGROUND: Strain echocardiography depicts regional myocardial mechanical activity. Ischemia has been shown to reduce systolic strain rate (sSR) and prolong the time to regional lengthening (T(RL)). In an experimental model, we tested whether sSR and T(RL) tracked dobutamine-induced changes in regional myocardial perfusion (regional myocardial blood flow [RMBF]), as measured by colored microspheres. METHODS: We used a closed-chest pig model of nonocclusive coronary stenosis (n = 14) created by inflating an angioplasty balloon in the proximal left anterior descending artery. Invasive hemodynamics, RMBF, and strain parameters were measured at baseline and peak dobutamine stimulation before and during the coronary stenosis. We compared segments with reduced RMBF versus those with preserved RMBF at peak dobutamine stimulation. RESULTS: Peak sSR correlated with RMBF (r = 0.70). In the absence of coronary stenosis, dobutamine stimulation caused a significant increase in RMBF and sSR and a decrease in T(RL). This response was blunted during coronary stenosis. Using the "best cutoff" method, the sensitivity and specificity for prediction of reduced RMBF (ischemia) was 81% and 91% for sSR and 65% and 91% for T(RL), respectively. These changes occurred in the absence of any change in global systolic and diastolic function (dP/dT(max), dP/dT(min), and tau). CONCLUSIONS: Novel strain parameters that depict regional myocardial mechanics are able to predict changes in RMBF during dobutamine stress. Quantitative strain parameters may complement current echocardiographic techniques for ischemia detection and potentially improve the accuracy and reproducibility of stress echocardiography.

Animals↗