Understanding pharmacokinetics using realistic computational models of fluid dynamics: biosimulation of drug distribution within the CSF space for intrathecal drugs

被引:0
|
作者
Andreas Kuttler
Thomas Dimke
Steven Kern
Gabriel Helmlinger
Donald Stanski
Luca A. Finelli
机构
[1] Modeling and Simulation,
[2] Novartis Pharma AG,undefined
[3] Modeling and Simulation,undefined
[4] Novartis Institutes for Biomedical Research,undefined
[5] Inc.,undefined
关键词
Spinal cord injury; Intrathecal; Biophysics; Pharmacokinetics; Cerebrospinal fluid; Computational fluid dynamics; SCI; PK; CSF; CFD;
D O I
暂无
中图分类号
学科分类号
摘要
We introduce how biophysical modeling in pharmaceutical research and development, combining physiological observations at the tissue, organ and system level with selected drug physiochemical properties, may contribute to a greater and non-intuitive understanding of drug pharmacokinetics and therapeutic design. Based on rich first-principle knowledge combined with experimental data at both conception and calibration stages, and leveraging our insights on disease processes and drug pharmacology, biophysical modeling may provide a novel and unique opportunity to interactively characterize detailed drug transport, distribution, and subsequent therapeutic effects. This innovative approach is exemplified through a three-dimensional (3D) computational fluid dynamics model of the spinal canal motivated by questions arising during pharmaceutical development of one molecular therapy for spinal cord injury. The model was based on actual geometry reconstructed from magnetic resonance imaging data subsequently transformed in a parametric 3D geometry and a corresponding finite-volume representation. With dynamics controlled by transient Navier–Stokes equations, the model was implemented in a commercial multi-physics software environment established in the automotive and aerospace industries. While predictions were performed in silico, the underlying biophysical models relied on multiple sources of experimental data and knowledge from scientific literature. The results have provided insights into the primary factors that can influence the intrathecal distribution of drug after lumbar administration. This example illustrates how the approach connects the causal chain underlying drug distribution, starting with the technical aspect of drug delivery systems, through physiology-driven drug transport, then eventually linking to tissue penetration, binding, residence, and ultimately clearance. Currently supporting our drug development projects with an improved understanding of systems physiology, biophysical models are being increasingly used to characterize drug transport and distribution in human tissues where pharmacokinetic measurements are difficult or impossible to perform. Importantly, biophysical models can describe emergent properties of a system, i.e. properties not identifiable through the study of the system’s components taken in isolation.
引用
收藏
页码:629 / 644
页数:15
相关论文
共 6 条
  • [1] Understanding pharmacokinetics using realistic computational models of fluid dynamics: biosimulation of drug distribution within the CSF space for intrathecal drugs
    Kuttler, Andreas
    Dimke, Thomas
    Kern, Steven
    Helmlinger, Gabriel
    Stanski, Donald
    Finelli, Luca A.
    JOURNAL OF PHARMACOKINETICS AND PHARMACODYNAMICS, 2010, 37 (06) : 629 - 644
  • [2] Magnetic drug targeting through a realistic model of human tracheobronchial airways using computational fluid and particle dynamics
    Pourmehran, Oveis
    Gorji, Tahereh B.
    Gorji-Bandpy, Mofid
    BIOMECHANICS AND MODELING IN MECHANOBIOLOGY, 2016, 15 (05) : 1355 - 1374
  • [3] Magnetic drug targeting through a realistic model of human tracheobronchial airways using computational fluid and particle dynamics
    Oveis Pourmehran
    Tahereh B. Gorji
    Mofid Gorji-Bandpy
    Biomechanics and Modeling in Mechanobiology, 2016, 15 : 1355 - 1374
  • [4] Distribution of ductus venosus blood flow using computational fluid dynamics on fetal heart virtual models
    Anzia, Lucille E.
    Pewowaruk, Ryan
    Ruedinger, Katrina L.
    Trampe, Barbara
    Heiser, Timothy
    Roldan-Alzate, Alejandro
    Iruretagoyena, J. Igor
    AMERICAN JOURNAL OF OBSTETRICS AND GYNECOLOGY, 2020, 222 (01) : S591 - S592
  • [5] Understanding microenvironments within tunnel-ventilated dairy cow freestall facilities: Examination using computational fluid dynamics and experimental validation
    Mondaca, Mario R.
    Choi, Christopher Y.
    Cook, Nigel B.
    BIOSYSTEMS ENGINEERING, 2019, 183 : 70 - 84
  • [6] Tutorial: Understanding the transport, deposition, and translocation of particles in human respiratory systems using Computational Fluid-Particle Dynamics and Physiologically Based Toxicokinetic models
    Feng, Yu
    Zhao, Jianan
    Hayati, Hamideh
    Sperry, Ted
    Yi, Hang
    JOURNAL OF AEROSOL SCIENCE, 2021, 151