Literature DB >> 24563548

Singular perturbation theory for predicting extravasation of Brownian particles.

Preyas Shah1, Sean Fitzgibbon2, Vivek Narsimhan2, Eric S G Shaqfeh3.   

Abstract

Motivated by recent studies on tumor treatments using the drug delivery of nanoparticles, we provide a singular perturbation theory and perform Brownian dynamics simulations to quantify the extravasation rate of Brownian particles in a shear flow over a circular pore with a lumped mass transfer resistance. The analytic theory we present is an expansion in the limit of a vanishing Péclet number (P), which is the ratio of convective fluxes to diffusive fluxes on the length scale of the pore. We state the concentration of particles near the pore and the extravasation rate (Sherwood number) to O(P1/2). This model improves upon previous studies because the results are valid for all values of the particle mass transfer coefficient across the pore, as modeled by the Damköhler number (κ), which is the ratio of the reaction rate to the diffusive mass transfer rate at the boundary. Previous studies focused on the adsorption-dominated regime (i.e., κ → ∞). Specifically, our work provides a theoretical basis and an interpolation-based approximate method for calculating the Sherwood number (a measure of the extravasation rate) for the case of finite resistance [κ ~ O(1)] at small Péclet numbers, which are physiologically important in the extravasation of nanoparticles. We compare the predictions of our theory and an approximate method to Brownian dynamics simulations with reflection-reaction boundary conditions as modeled by κ. They are found to agree well at small P and for the κ ≪ 1 and κ ≫ 1 asymptotic limits representing the diffusion-dominated and adsorption-dominated regimes, respectively. Although this model neglects the finite size effects of the particles, it provides an important first step toward understanding the physics of extravasation in the tumor vasculature.

Entities:  

Keywords:  Brownian dynamics; Extravasation; Law of additive resistances; Singular perturbation

Year:  2014        PMID: 24563548      PMCID: PMC3927922          DOI: 10.1007/s10665-013-9665-2

Source DB:  PubMed          Journal:  J Eng Math        ISSN: 0022-0833            Impact factor:   1.509


  7 in total

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2.  Microvascular blood viscosity in vivo and the endothelial surface layer.

Authors:  A R Pries; T W Secomb
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3.  Shear-induced platelet margination in a microchannel.

Authors:  Hong Zhao; Eric S G Shaqfeh
Journal:  Phys Rev E Stat Nonlin Soft Matter Phys       Date:  2011-06-30

4.  Identification of distinct luminal domains for macromolecules, erythrocytes, and leukocytes within mammalian capillaries.

Authors:  H Vink; B R Duling
Journal:  Circ Res       Date:  1996-09       Impact factor: 17.367

5.  Oncotic pressure in solid tumors is elevated.

Authors:  M Stohrer; Y Boucher; M Stangassinger; R K Jain
Journal:  Cancer Res       Date:  2000-08-01       Impact factor: 12.701

6.  Shape matters: intravital microscopy reveals surprising geometrical dependence for nanoparticles in tumor models of extravasation.

Authors:  Bryan Ronain Smith; Paul Kempen; Donna Bouley; Alexander Xu; Zhuang Liu; Nicholas Melosh; Hongjie Dai; Robert Sinclair; Sanjiv Sam Gambhir
Journal:  Nano Lett       Date:  2012-06-11       Impact factor: 11.189

Review 7.  High interstitial fluid pressure - an obstacle in cancer therapy.

Authors:  Carl-Henrik Heldin; Kristofer Rubin; Kristian Pietras; Arne Ostman
Journal:  Nat Rev Cancer       Date:  2004-10       Impact factor: 60.716

  7 in total
  1 in total

1.  Extravasation of Brownian Spheroidal Nanoparticles through Vascular Pores.

Authors:  Preyas N Shah; Tiras Y Lin; Ioana L Aanei; Sarah H Klass; Bryan Ronain Smith; Eric S G Shaqfeh
Journal:  Biophys J       Date:  2018-08-17       Impact factor: 4.033

  1 in total

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