Literature DB >> 27863742

Nanoparticle transport and delivery in a heterogeneous pulmonary vasculature.

Salman Sohrabi1, Shunqiang Wang2, Jifu Tan3, Jiang Xu4, Jie Yang5, Yaling Liu6.   

Abstract

Quantitative understanding of nanoparticles delivery in a complex vascular networks is very challenging because it involves interplay of transport, hydrodynamic force, and multivalent interactions across different scales. Heterogeneous pulmonary network includes up to 16 generations of vessels in its arterial tree. Modeling the complete pulmonary vascular system in 3D is computationally unrealistic. To save computational cost, a model reconstructed from MRI scanned images is cut into an arbitrary pathway consisting of the upper 4-generations. The remaining generations are represented by an artificially rebuilt pathway. Physiological data such as branch information and connectivity matrix are used for geometry reconstruction. A lumped model is used to model the flow resistance of the branches that are cut off from the truncated pathway. Moreover, since the nanoparticle binding process is stochastic in nature, a binding probability function is used to simplify the carrier attachment and detachment processes. The stitched realistic and artificial geometries coupled with the lumped model at the unresolved outlets are used to resolve the flow field within the truncated arterial tree. Then, the biodistribution of 200nm, 700nm and 2µm particles at different vessel generations is studied. At the end, 0.2-0.5% nanocarrier deposition is predicted during one time passage of drug carriers through pulmonary vascular tree. Our truncated approach enabled us to efficiently model hemodynamics and accordingly particle distribution in a complex 3D vasculature providing a simple, yet efficient predictive tool to study drug delivery at organ level.
Copyright © 2016 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  Adhesion probability function; Heterogeneous vasculature; Human lung; Nanoparticle delivery; Organ level drug delivery; Truncated Model

Mesh:

Year:  2016        PMID: 27863742      PMCID: PMC5191937          DOI: 10.1016/j.jbiomech.2016.11.023

Source DB:  PubMed          Journal:  J Biomech        ISSN: 0021-9290            Impact factor:   2.712


  39 in total

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3.  Noninvasive evaluation of wall shear stress on retinal microcirculation in humans.

Authors:  Taiji Nagaoka; Akitoshi Yoshida
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4.  Effects of exercise and respiration on hemodynamic efficiency in CFD simulations of the total cavopulmonary connection.

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6.  Characterization of nanoparticle binding dynamics in microcirculation using an adhesion probability function.

Authors:  Salman Sohrabi; Doruk Erdem Yunus; Jiang Xu; Jie Yang; Yaling Liu
Journal:  Microvasc Res       Date:  2016-07-14       Impact factor: 3.514

7.  Morphometry of pig coronary arterial trees.

Authors:  G S Kassab; C A Rider; N J Tang; Y C Fung
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8.  Airflow and particle deposition simulations in health and emphysema: from in vivo to in silico animal experiments.

Authors:  Jessica M Oakes; Alison L Marsden; Celine Grandmont; Shawn C Shadden; Chantal Darquenne; Irene E Vignon-Clementel
Journal:  Ann Biomed Eng       Date:  2013-12-07       Impact factor: 3.934

9.  Computational modeling of magnetic nanoparticle targeting to stent surface under high gradient field.

Authors:  Shunqiang Wang; Yihua Zhou; Jifu Tan; Jiang Xu; Jie Yang; Yaling Liu
Journal:  Comput Mech       Date:  2014-03-01       Impact factor: 4.014

10.  Fractal analysis of pulmonary arteries: the fractal dimension is lower in pulmonary hypertension.

Authors:  L M Boxt; J Katz; L S Liebovitch; R Jones; P D Esser; L Reid
Journal:  J Thorac Imaging       Date:  1994       Impact factor: 3.000

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Review 4.  Biomedical and biophysical limits to mathematical modeling of pulmonary system mechanics: a scoping review on aerosol and drug delivery.

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Journal:  Biomech Model Mechanobiol       Date:  2021-11-01
  4 in total

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