Journal of Biomechanics
Volume 38, Issue 5 , Pages 1129-1141, May 2005

Multiscale modeling of the cardiovascular system: application to the study of pulmonary and coronary perfusions in the univentricular circulation

  • Katia Laganà

      Affiliations

    • Laboratory of Biological Structure Mechanics, Bioengineering Department, Politecnico di Milano, Piazza Leonardo da Vinci, 32, 20133, Milan, Italy
  • ,
  • Rossella Balossino

      Affiliations

    • Laboratory of Biological Structure Mechanics, Bioengineering Department, Politecnico di Milano, Piazza Leonardo da Vinci, 32, 20133, Milan, Italy
  • ,
  • Francesco Migliavacca

      Affiliations

    • Laboratory of Biological Structure Mechanics, Bioengineering Department, Politecnico di Milano, Piazza Leonardo da Vinci, 32, 20133, Milan, Italy
    • Corresponding Author InformationCorresponding author. Tel.: +39-02-2399-4283; fax: +39-02-2399-4286
  • ,
  • Giancarlo Pennati

      Affiliations

    • Laboratory of Biological Structure Mechanics, Bioengineering Department, Politecnico di Milano, Piazza Leonardo da Vinci, 32, 20133, Milan, Italy
  • ,
  • Edward L. Bove

      Affiliations

    • Section of Cardiac Surgery, The University of Michigan School of Medicine, Ann Arbor, MI, USA
  • ,
  • Marc R. de Leval

      Affiliations

    • Cardiothoracic Unit, Great Ormond Street Hospital for Children NHS Trust, London, UK
  • ,
  • Gabriele Dubini

      Affiliations

    • Laboratory of Biological Structure Mechanics, Structural Engineering Department, Politecnico di Milano, Milan, Italy

Accepted 12 May 2004. published online 19 August 2004.

Abstract 

The objective of this study is to compare the coronary and pulmonary blood flow dynamics resulting from two configurations of systemic-to-pulmonary artery shunts currently utilized during the Norwood procedure: the central (CS) and modified Blalock Taussig (MBTS) shunts. A lumped parameter model of the neonatal cardiovascular circulation and detailed 3-D models of the shunt based on the finite volume method were constructed. Shunt sizes of 3, 3.5 and 4mm were considered. A multiscale approach was adopted to prescribe appropriate and realistic boundary conditions for the 3-D models of the Norwood circulation. Results showed that the average shunt flow rate is higher for the CS option than for the MBTS and that pulmonary flow increases with shunt size for both options. Cardiac output is higher for the CS option for all shunt sizes. Flow distribution between the left and the right pulmonary arteries is not completely balanced, although for the CS option the discrepancy is low (50–51% of the pulmonary flow to the right lung) while for the MBTS it is more pronounced with larger shunt sizes (51–54% to the left lung). The CS option favors perfusion to the right lung while the MBTS favors the left. In the CS option, a smaller percentage of aortic flow is distributed to the coronary circulation, while that percentage rises for the MBTS. These findings may have important implications for coronary blood flow and ventricular function.

Keywords:  Mathematical model, Finite volume method, Congenital heart disease, Lumped parameter model

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PII: S0021-9290(04)00262-3

doi:10.1016/j.jbiomech.2004.05.027

Journal of Biomechanics
Volume 38, Issue 5 , Pages 1129-1141, May 2005