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1.
Ann Biomed Eng ; 39(1): 260-76, 2011 Jan.
Article in English | MEDLINE | ID: mdl-20945159

ABSTRACT

In this article, we present a point process method to assess dynamic baroreflex sensitivity (BRS) by estimating the baroreflex gain as focal component of a simplified closed-loop model of the cardiovascular system. Specifically, an inverse Gaussian probability distribution is used to model the heartbeat interval, whereas the instantaneous mean is identified by linear and bilinear bivariate regressions on both the previous R-R intervals (RR) and blood pressure (BP) beat-to-beat measures. The instantaneous baroreflex gain is estimated as the feedback branch of the loop with a point-process filter, while the RR-->BP feedforward transfer function representing heart contractility and vasculature effects is simultaneously estimated by a recursive least-squares filter. These two closed-loop gains provide a direct assessment of baroreflex control of heart rate (HR). In addition, the dynamic coherence, cross bispectrum, and their power ratio can also be estimated. All statistical indices provide a valuable quantitative assessment of the interaction between heartbeat dynamics and hemodynamics. To illustrate the application, we have applied the proposed point process model to experimental recordings from 11 healthy subjects in order to monitor cardiovascular regulation under propofol anesthesia. We present quantitative results during transient periods, as well as statistical analyses on steady-state epochs before and after propofol administration. Our findings validate the ability of the algorithm to provide a reliable and fast-tracking assessment of BRS, and show a clear overall reduction in baroreflex gain from the baseline period to the start of propofol anesthesia, confirming that instantaneous evaluation of arterial baroreflex control of HR may yield important implications in clinical practice, particularly during anesthesia and in postoperative care.


Subject(s)
Baroreflex/physiology , Biofeedback, Psychology/physiology , Blood Pressure/physiology , Heart Rate/physiology , Models, Cardiovascular , Propofol/administration & dosage , Anesthetics/administration & dosage , Baroreflex/drug effects , Biofeedback, Psychology/drug effects , Blood Pressure/drug effects , Computer Simulation , Female , Heart Rate/drug effects , Humans , Injections, Intravenous , Male , Models, Statistical , Oscillometry/methods , Young Adult
2.
Article in English | MEDLINE | ID: mdl-19963899

ABSTRACT

Quantitative evaluation of respiratory sinus arrhythmia (RSA) may provide important information in clinical practice of anesthesia and postoperative care. In this paper, we apply a point process method to assess dynamic RSA during propofol general anesthesia. Specifically, an inverse Gaussian probability distribution is used to model the heartbeat interval, whereas the instantaneous mean is identified by a linear or bilinear bivariate regression on the previous R-R intervals and respiratory measures. The estimated second-order bilinear interaction allows us to evaluate the nonlinear component of the RSA. The instantaneous RSA gain and phase can be estimated with an adaptive point process filter. The algorithm's ability to track non-stationary dynamics is demonstrated using one clinical recording. Our proposed statistical indices provide a valuable quantitative assessment of instantaneous cardiorespiratory control and heart rate variability (HRV) during general anesthesia.


Subject(s)
Anesthesia, General/adverse effects , Anesthetics, Intravenous/adverse effects , Arrhythmia, Sinus/chemically induced , Nonlinear Dynamics , Propofol/adverse effects , Respiratory Mechanics/physiology , Calibration , Dose-Response Relationship, Drug , Heart Rate , Humans , Linear Models , Pilot Projects
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