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1.
PLoS Comput Biol ; 17(5): e1008881, 2021 05.
Artículo en Inglés | MEDLINE | ID: mdl-33970900

RESUMEN

In this work, we describe the CRIMSON (CardiovasculaR Integrated Modelling and SimulatiON) software environment. CRIMSON provides a powerful, customizable and user-friendly system for performing three-dimensional and reduced-order computational haemodynamics studies via a pipeline which involves: 1) segmenting vascular structures from medical images; 2) constructing analytic arterial and venous geometric models; 3) performing finite element mesh generation; 4) designing, and 5) applying boundary conditions; 6) running incompressible Navier-Stokes simulations of blood flow with fluid-structure interaction capabilities; and 7) post-processing and visualizing the results, including velocity, pressure and wall shear stress fields. A key aim of CRIMSON is to create a software environment that makes powerful computational haemodynamics tools accessible to a wide audience, including clinicians and students, both within our research laboratories and throughout the community. The overall philosophy is to leverage best-in-class open source standards for medical image processing, parallel flow computation, geometric solid modelling, data assimilation, and mesh generation. It is actively used by researchers in Europe, North and South America, Asia, and Australia. It has been applied to numerous clinical problems; we illustrate applications of CRIMSON to real-world problems using examples ranging from pre-operative surgical planning to medical device design optimization.


Asunto(s)
Hemodinámica/fisiología , Modelos Cardiovasculares , Programas Informáticos , Síndrome de Alagille/fisiopatología , Síndrome de Alagille/cirugía , Vasos Sanguíneos/anatomía & histología , Vasos Sanguíneos/diagnóstico por imagen , Vasos Sanguíneos/fisiología , Biología Computacional , Simulación por Computador , Análisis de Elementos Finitos , Factores de Riesgo de Enfermedad Cardiaca , Humanos , Imagenología Tridimensional , Trasplante de Hígado/efectos adversos , Imagen por Resonancia Magnética/estadística & datos numéricos , Modelos Anatómicos , Modelación Específica para el Paciente , Complicaciones Posoperatorias/etiología , Interfaz Usuario-Computador
2.
Biomech Model Mechanobiol ; 22(3): 971-986, 2023 Jun.
Artículo en Inglés | MEDLINE | ID: mdl-36917305

RESUMEN

Pulmonary arteries constitute a low-pressure network of vessels, often characterized as a bifurcating tree with heterogeneous vessel mechanics. Understanding the vascular complexity and establishing homeostasis is important to study diseases such as pulmonary arterial hypertension (PAH). The onset and early progression of PAH can be traced to changes in the morphometry and structure of the distal vasculature. Coupling hemodynamics with vessel wall growth and remodeling (G&R) is crucial for understanding pathology at distal vasculature. Accordingly, the goal of this study is to provide a multiscale modeling framework that embeds the essential features of arterial wall constituents coupled with the hemodynamics within an arterial network characterized by an extension of Murray's law. This framework will be used to establish the homeostatic baseline characteristics of a pulmonary arterial tree, including important parameters such as vessel radius, wall thickness and shear stress. To define the vascular homeostasis and hemodynamics in the tree, we consider two timescales: a cardiac cycle and a longer period of vascular adaptations. An iterative homeostatic optimization, which integrates a metabolic cost function minimization, the stress equilibrium, and hemodynamics, is performed at the slow timescale. In the fast timescale, the pulsatile blood flow dynamics is described by a Womersley's deformable wall analytical solution. Illustrative examples for symmetric and asymmetric trees are presented that provide baseline characteristics for the normal pulmonary arterial vasculature. The results are compared with diverse literature data on morphometry, structure, and mechanics of pulmonary arteries. The developed framework demonstrates a potential for advanced parametric studies and future G&R and hemodynamics modeling of PAH.


Asunto(s)
Hipertensión Pulmonar , Circulación Pulmonar , Humanos , Hemodinámica , Arteria Pulmonar , Homeostasis
3.
Int J Numer Method Biomed Eng ; 36(2): e3266, 2020 02.
Artículo en Inglés | MEDLINE | ID: mdl-31617679

RESUMEN

In this paper, we perform a verification study of the Coupled-Momentum Method (CMM), a 3D fluid-structure interaction (FSI) model which uses a thin linear elastic membrane and linear kinematics to describe the mechanical behavior of the vessel wall. The verification of this model is done using Womersley's deformable wall analytical solution for pulsatile flow in a semi-infinite cylindrical vessel. This solution is, under certain premises, the analytical solution of the CMM and can thus be used for model verification. For the numerical solution, we employ an impedance boundary condition to define a reflection-free outflow boundary condition and thus mimic the physics of the analytical solution, which is defined on a semi-infinite domain. We first provide a rigorous derivation of Womersley's deformable wall theory via scale analysis. We then illustrate different characteristics of the analytical solution such as space-time wave periodicity and attenuation. Finally, we present the verification tests comparing the CMM with Womersley's theory.


Asunto(s)
Flujo Pulsátil/fisiología , Algoritmos , Animales , Circulación Sanguínea/fisiología , Velocidad del Flujo Sanguíneo/fisiología , Arterias Carótidas/fisiología , Humanos
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