Key result
A mechanical oscillator model of pulmonary flow velocity patterns yielded stiffness parameters that correlated with actual pulmonary vascular stiffness (r=0.6811) and resistance (r=0.4924).
Why the study?
Does a mechanical oscillator model applied to Doppler ultrasound flow traces accurately predict right heart afterload and function in children with PAH?
Observational (n=53)
Does a mechanical oscillator model applied to Doppler ultrasound flow traces accurately predict right heart afterload and function in children with PAH?
p-value: p=< .05
A mechanical oscillator model applied to Doppler ultrasound flow traces provides noninvasive parameters that correlate with invasive measures of right heart afterload and function in children with PAH.
May support noninvasive stiffness estimation in pediatric PAH; hypothesis-generating and requires prospective validation before clinical use.
OBJECTIVE: Noninvasive diagnostics for pulmonary arterial hypertension (PAH) have traditionally sought to predict main pulmonary artery pressure from qualitative or direct quantitative measures of the flow velocity pattern obtained from spectral Doppler ultrasound examination of the main pulmonary artery. A more detailed quantification of flow velocity patterns in the systemic circuit has been obtained by parameterizing the flow trace with a simple dynamic system model. Here, we investigate such a model's utility as a noninvasive predictor of total right heart afterload and right heart function. DESIGN: Flow velocity and pressure was measured within the main pulmonary artery during right heart catheterization of patients with normal hemodynamics (19 subjects, 20 conditions) and those with PAH undergoing reactivity evaluation (34 patients, 69 conditions). Our model parameters were obtained by least-squares fitting the model velocity to the measured flow velocity. RESULTS: Five parameter means displayed significant (P < .05) differences between normotensive and hypertensive groups. The model stiffness parameter correlated to actual pulmonary vascular resistance (r = 0.4924), pulmonary vascular stiffness (r = 0.6811), pulmonary flow (r = 0.6963), and stroke work (r = 0.7017), while the model initial displacement parameter had good correlation to stiffness (r = 0.6943) and flow (r = 0.6958). CONCLUSIONS: As predictors of total right heart afterload (resistance and stiffness) and right ventricle work, the model parameters of stiffness and initial displacement offer more comprehensive measures of the disease state than previous noninvasive methods and may be useful in routine diagnostic monitoring of patients with PAH.
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Hunter et al. (2008) conducted an observational in Pulmonary Arterial Hypertension (n=53). Mechanical oscillator model of flow velocity patterns vs. Normotensive patients was evaluated on Correlation of model parameters to actual pulmonary vascular resistance, stiffness, flow, and stroke work (p=< .05). A mechanical oscillator model of pulmonary flow velocity patterns yielded stiffness parameters that correlated with actual pulmonary vascular stiffness (r=0.6811) and resistance (r=0.4924).
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