Key result
Multiscale modeling successfully simulated pronounced cerebroarterial hemodynamic changes following carotid artery operation, whereas a stand-alone 3D model with free outflow conditions failed.
Why the study?
Does multiscale modeling better reproduce cerebroarterial hemodynamic changes following carotid artery operation compared to stand-alone 3D modeling?
Does multiscale modeling better reproduce cerebroarterial hemodynamic changes following carotid artery operation compared to stand-alone 3D modeling?
Multiscale modeling that incorporates global cardiovascular properties provides more accurate simulations of local cerebroarterial hemodynamics than stand-alone 3D models.
Multiscale modeling may enhance post-carotid hemodynamic simulations; leaves open clinical translation and validation.
Free outflow boundary conditions have been widely adopted in hemodynamic model studies, they, however, intrinsically lack the ability to account for the regulatory mechanisms of systemic hemodynamics and hence carry a risk of producing incorrect results when applied to vascular segments with multiple outlets. In the present study, we developed a multiscale model capable of incorporating global cardiovascular properties into the simulation of blood flows in local vascular segments. The multiscale model was constructed by coupling a three-dimensional (3D) model of local arterial segments with a zero-one-dimensional (0-1-D) model of the cardiovascular system. Numerical validation based on an idealized model demonstrated the ability of the multiscale model to preserve reasonable pressure/flow wave transmission among different models. The multiscale model was further calibrated with clinical data to simulate cerebroarterial hemodynamics in a patient undergoing carotid artery operation. The results showed pronounced hemodynamic changes in the cerebral circulation following the operation. Additional numerical experiments revealed that a stand-alone 3D model with free outflow conditions failed to reproduce the results obtained by the multiscale model. These results demonstrated the potential advantage of multiscale modeling over single-scale modeling in patient-specific hemodynamic studies. Due to the fact that the present study was limited to a single patient, studies on more patients would be required to further confirm the findings.
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Liang et al. (2015) studied Carotid artery operation (n=1). Multiscale modeling vs. Stand-alone 3D model was evaluated on Cerebroarterial hemodynamics. Multiscale modeling successfully simulated pronounced cerebroarterial hemodynamic changes following carotid artery operation, whereas a stand-alone 3D model with free outflow conditions failed.
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