Back to Search
Start Over
On the microstructurally driven heterogeneous response of brain white matter to drug infusion pressure
- Source :
- Biomechanics and Modeling in Mechanobiology. 21:1299-1316
- Publication Year :
- 2022
- Publisher :
- Springer Science and Business Media LLC, 2022.
-
Abstract
- Delivering therapeutic agents into the brain via convection-enhanced delivery (CED), a mechanically controlled infusion method, provides an efficient approach to bypass the blood–brain barrier and deliver drugs directly to the targeted focus in the brain. Mathematical methods based on Darcy’s law have been widely adopted to predict drug distribution in the brain to improve the accuracy and reduce the side effects of this technique. However, most of the current studies assume that the hydraulic permeability and porosity of brain tissue are homogeneous and constant during the infusion process, which is less accurate due to the deformability of the axonal structures and the extracellular matrix in brain white matter. To solve this problem, a multiscale model was established in this study, which takes into account the pressure-driven deformation of brain microstructure to quantify the change of local permeability and porosity. The simulation results were corroborated using experiments measuring hydraulic permeability in ovine brain samples. Results show that both hydraulic pressure and drug concentration in the brain would be significantly underestimated by classical Darcy’s law, thus highlighting the great importance of the present multiscale model in providing a better understanding of how drugs transport inside the brain and how brain tissue responds to the infusion pressure. This new method can assist the development of both new drugs for brain diseases and preoperative evaluation techniques for CED surgery, thus helping to improve the efficiency and precision of treatments for brain diseases.
- Subjects :
- Technology
POROUS-MEDIA
FLOW
Biophysics
Biomedical Engineering
Convection
Permeability
MECHANISMS
Multiscale modelling
DELIVERY
Drug Delivery Systems
Engineering
0903 Biomedical Engineering
Animals
Humans
Heterogeneous response
Engineering, Biomedical
Brain Diseases
Sheep
Science & Technology
Convection-enhanced delivery
Mechanical Engineering
Brain
Brain tissue
White Matter
DIFFUSION
TRANSPORT
MODEL
Pharmaceutical Preparations
TISSUE
Modeling and Simulation
5-FLUOROURACIL
Life Sciences & Biomedicine
Porosity
0913 Mechanical Engineering
Biotechnology
Subjects
Details
- ISSN :
- 16177940 and 16177959
- Volume :
- 21
- Database :
- OpenAIRE
- Journal :
- Biomechanics and Modeling in Mechanobiology
- Accession number :
- edsair.doi.dedup.....bd3799a6ce50f97dae046d28b121b316