A Simple Adaptive Transfer Function for Deriving the Central Blood Pressure Waveform from a Radial Blood Pressure Waveform

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作者
Mingwu Gao
William C. Rose
Barry Fetics
David A. Kass
Chen-Huan Chen
Ramakrishna Mukkamala
机构
[1] Michigan State University,Department of Electrical and Computer Engineering
[2] University of Delaware,Department of Kinesiology and Applied Physiology
[3] Johns Hopkins Medical Institutions,Division of Cardiology, Department of Medicine
[4] National Yang-Ming University,Department of Medicine
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Scientific Reports | / 6卷
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摘要
Generalized transfer functions (GTFs) are available to compute the more relevant central blood pressure (BP) waveform from a more easily measured radial BP waveform. However, GTFs are population averages and therefore may not adapt to variations in pulse pressure (PP) amplification (ratio of radial to central PP). A simple adaptive transfer function (ATF) was developed. First, the transfer function is defined in terms of the wave travel time and reflection coefficient parameters of an arterial model. Then, the parameters are estimated from the radial BP waveform by exploiting the observation that central BP waveforms exhibit exponential diastolic decays. The ATF was assessed using the original data that helped popularize the GTF. These data included radial BP waveforms and invasive reference central BP waveforms from cardiac catheterization patients. The data were divided into low, middle, and high PP amplification groups. The ATF estimated central BP with greater accuracy than GTFs in the low PP amplification group (e.g., central systolic BP and PP root-mean-square-errors of 3.3 and 4.2 mm Hg versus 6.2 and 7.1 mm Hg; p ≤ 0.05) while showing similar accuracy in the higher PP amplification groups. The ATF may permit more accurate, non-invasive central BP monitoring in elderly and hypertensive patients.
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[1]  
Agnoletti D(2012)Pulse pressure amplification, pressure waveform calibration and clinical applications Atherosclerosis 224 108-12
[2]  
Karamanoglu M(1993)An analysis of the relationship between central aortic and peripheral upper limb pressure waves in man Eur. Heart J. 14 160-167
[3]  
O’Rourke MF(1997)Estimation of central aortic pressure waveform by mathematical transformation of radial tonometry pressure. Validation of generalized transfer function Circulation 95 1827-1836
[4]  
Avolio AP(1999)Parametric model derivation of transfer function for noninvasive estimation of aortic pressure by radial tonometry IEEE Trans. Biomed. Eng. 46 698-706
[5]  
Kelly RP(2010)Prediction of cardiovascular events and all-cause mortality with central haemodynamics: a systematic review and meta-analysis Eur. Heart J. 31 1865-71
[6]  
Chen CH(1990)Translation of Otto Frank ’ s Paper “Die Grundform des Arteriellen Pulses” Zeitschrift fur Biologie J. Mol. Cell Cardiol. 22 253-254
[7]  
Fetics B(1974), 483–526 (1899) Circ. Res. 35 56-66
[8]  
Nevo E(1996)Characteristics of aortic diastolic pressure decay with application to the continuous monitoring of changes in peripheral vascular resistance Pacing Clin. Electrophysiol. 19 1635-1639
[9]  
Chen CH(1979)Bazett had had a computer Scandinavian J. Stats. 6 65-70
[10]  
Kass DA(2013)A simple sequentially rejective multiple test procedure Conf. Proc. IEEE Eng. Med. Biol. Soc. 1 225-228