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Computing the blood brain barrier (BBB) diffusion coefficient: A molecular dynamics approach

Shamloo, A ; Sharif University of Technology | 2016

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  1. Type of Document: Article
  2. DOI: 10.1016/j.jmmm.2016.03.030
  3. Publisher: Elsevier , 2016
  4. Abstract:
  5. Various physical and biological aspects of the Blood Brain Barrier (BBB) structure still remain unfolded. Therefore, among the several mechanisms of drug delivery, only a few have succeeded in breaching this barrier, one of which is the use of Magnetic Nanoparticles (MNPs). However, a quantitative characterization of the BBB permeability is desirable to find an optimal magnetic force-field. In the present study, a molecular model of the BBB is introduced that precisely represents the interactions between MNPs and the membranes of Endothelial Cells (ECs) that form the BBB. Steered Molecular Dynamics (SMD) simulations of the BBB crossing phenomenon have been carried out. Mathematical modeling of the BBB as an input-output system has been considered from a system dynamics modeling viewpoint, enabling us to analyze the BBB behavior based on a robust model. From this model, the force profile required to overcome the barrier has been extracted for a single NP from the SMD simulations at a range of velocities. Using this data a transfer function model has been obtained and the diffusion coefficient is evaluated. This study is a novel approach to bridge the gap between nanoscale models and microscale models of the BBB. The characteristic diffusion coefficient has the nano-scale molecular effects inherent, furthermore reducing the computational costs of a nano-scale simulation model and enabling much more complex studies to be conducted. © 2016 Elsevier B.V. All rights reserved
  6. Keywords:
  7. Discrete medium ; Magnetic nanoparticle ; System dynamics identification ; Blood ; Diffusion ; Endothelial cells ; Magnetism ; Molecular dynamics ; Nanomagnetics ; Nanoparticles ; Nanotechnology ; System theory ; Continuous medium ; Forced steering ; Magnetic nano-particles ; System Dynamics ; Diffusion barriers
  8. Source: Journal of Magnetism and Magnetic Materials ; Volume 410 , 2016 , Pages 187-197 ; 03048853 (ISSN)
  9. URL: http://www.sciencedirect.com/science/article/pii/S030488531630227X