Literature DB >> 19283307

Computer simulation of coronary flow waveforms during caval occlusion.

Claudio De Lazzari1, D Neglia, G Ferrari, F Bernini, M Micalizzi, A L'Abbate, M G Trivella.   

Abstract

OBJECTIVES: Mathematical modeling of the cardiovascular system is a powerful tool to extract physiologically relevant information from multi-parametric experiments. The purpose of the present work was to reproduce by means of a computer simulator, systemic and coronary measurements obtained by in vivo experiments in the pig.
METHODS: We monitored in anesthetized open-chest pig the phasic blood flow of the left descending coronary artery, aortic pressure, left ventricular pressure and volume. Data were acquired before, during, and after caval occlusion. Inside the software simulator (CARDIOSIM) of the cardiovascular system, coronary circulation was modeled in three parallel branching sections. Both systemic and pulmonary circulations were simulated using a lumped parameter mathematical model. Variable elastance model reproduced Starling's law of the heart.
RESULTS: Different left ventricular pressure-volume loops during experimental caval occlusion and simulated cardiac loops are presented. The sequence of coronary flow-aortic pressure loops obtained in vivo during caval occlusion together with the simulated loops reproduced by the software simulator are reported. Finally experimental and simulated instantaneous coronary blood flow waveforms are shown.
CONCLUSIONS: The lumped parameter model of the coronary circulation, together with the cardiovascular system model, is capable of reproducing the changes during caval occlusion, with the profound shape deformation of the flow signal observed during the in vivo experiment. In perspectives, the results of the present model could offer new tool for studying the role of the different determinants of myocardial perfusion, by using the coronary loop shape as a "sensor" of ventricular mechanics in various physiological and pathophysiological conditions.

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Year:  2009        PMID: 19283307     DOI: 10.3414/ME0539

Source DB:  PubMed          Journal:  Methods Inf Med        ISSN: 0026-1270            Impact factor:   2.176


  5 in total

1.  Use of a comprehensive numerical model to improve biventricular pacemaker temporization in patients affected by heart failure undergoing to CRT-D therapy.

Authors:  A Di Molfetta; L Santini; G B Forleo; M Cesario; C Tota; M Sgueglia; D Sergi; G Ferrari; F Romeo
Journal:  Med Biol Eng Comput       Date:  2010-07-09       Impact factor: 2.602

2.  Simulation study of Hemodynamic in Bifurcations for Cerebral Arteriovenous Malformation using Electrical Analogy.

Authors:  Y Kiran Kumar; S B Mehta; M Ramachandra
Journal:  J Biomed Phys Eng       Date:  2017-06-01

3.  Intra-aortic balloon counterpulsation timing: A new numerical model for programming and training in the clinical environment.

Authors:  Claudio De Lazzari; Beatrice De Lazzari; Attilio Iacovoni; Silvia Marconi; Silvia Papa; Massimo Capoccia; Roberto Badagliacca; Carmine Dario Vizza
Journal:  Comput Methods Programs Biomed       Date:  2020-05-15       Impact factor: 5.428

Review 4.  CARDIOSIM©: The First Italian Software Platform for Simulation of the Cardiovascular System and Mechanical Circulatory and Ventilatory Support.

Authors:  Beatrice De Lazzari; Roberto Badagliacca; Domenico Filomena; Silvia Papa; Carmine Dario Vizza; Massimo Capoccia; Claudio De Lazzari
Journal:  Bioengineering (Basel)       Date:  2022-08-11

5.  Simulation as a preoperative planning approach in advanced heart failure patients. A retrospective clinical analysis.

Authors:  Massimo Capoccia; Silvia Marconi; Sanjeet Avtaar Singh; Domenico M Pisanelli; Claudio De Lazzari
Journal:  Biomed Eng Online       Date:  2018-05-02       Impact factor: 2.819

  5 in total

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