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PMID: 30929523 Published · ppublish English Journal Article

A 3D CFD model of the interstitial fluid pressure and drug distribution in heterogeneous tumor nodules during intraperitoneal chemotherapy.

Drug delivery ·Vol. 26 ·No. 1 ·2019-12-00 ·Pages 404-415

Steuperaert M, Debbaut C, Carlier C, De Wever O, Descamps B, Vanhove C, Ceelen W, Segers P

Abstract

Although intraperitoneal chemotherapy (IPC) has evolved into an established treatment modality for patients with peritoneal metastasis (PM), drug penetration into tumor nodules remains limited. Drug transport during IPC is a complex process that depends on a large number of different parameters (e.g. drug, dose, tumor size, tumor pressure, tumor vascularization). Mathematical modeling allows for a better understanding of the processes that underlie drug transport and the relative importance of the parameters influencing it. In this work, we expanded our previously developed 3D Computational Fluid Dynamics (CFD) model of the drug mass transport in idealized tumor nodules during IP chemotherapy to include realistic tumor geometries and spatially varying vascular properties. DCE-MRI imaging made it possible to distinguish between tumorous tissues, healthy surrounding tissues and necrotic zones based on differences in the vascular properties. We found that the resulting interstitial pressure profiles within tumors were highly dependent on the irregular geometries and different zones. The tumor-specific cisplatin penetration depths ranged from 0.32 mm to 0.50 mm. In this work, we found that the positive relationship between tumor size and IFP does not longer hold in the presence of zones with different vascular properties, while we did observe a positive relationship between the percentage of viable tumor tissue and the maximal IFP. Our findings highlight the importance of incorporating both the irregular tumor geometries and different vascular zones in CFD models of IPC.

Keywords
DCE-MRI Drug transport computational fluid dynamics interstitial fluid pressure intraperitoneal chemotherapy
MeSH Terms
Animals Antineoplastic Agents/administration & dosage,pharmacokinetics Biological Transport Cell Line, Tumor Cisplatin/administration & dosage,pharmacokinetics Female Humans Hydrodynamics Imaging, Three-Dimensional Magnetic Resonance Imaging/methods Mice Mice, Nude Models, Theoretical Neovascularization, Pathologic/pathology Peritoneal Neoplasms/drug therapy,secondary Tissue Distribution
Chemicals
Antineoplastic Agents Cisplatin
Authors & Affiliations
8 authors, click to expand affiliations / ORCID
Steuperaert Margo
a Biofluid, Tissue and Solid Mechanics for Medical Applications (bioMMeda), Department of Electronics and Information Systems , Ghent University , Ghent , Belgium.
Debbaut Charlotte ORCID
a Biofluid, Tissue and Solid Mechanics for Medical Applications (bioMMeda), Department of Electronics and Information Systems , Ghent University , Ghent , Belgium.
Carlier Charlotte
b Departement of GI Surgery and Cancer Research Institute Ghent (CRIG) , Ghent University , Ghent , Belgium.
De Wever Olivier ORCID
c Department of Human Structure and Repair , Ghent University , Ghent , Belgium.
Descamps Benedicte ORCID
d Infinity (iMinds-IBiTech-MEDISIP), Department of Electronics and Information Systems , Ghent University , Ghent , Belgium.
Vanhove Christian ORCID
d Infinity (iMinds-IBiTech-MEDISIP), Department of Electronics and Information Systems , Ghent University , Ghent , Belgium.
Ceelen Wim ORCID
b Departement of GI Surgery and Cancer Research Institute Ghent (CRIG) , Ghent University , Ghent , Belgium.
Segers Patrick ORCID
a Biofluid, Tissue and Solid Mechanics for Medical Applications (bioMMeda), Department of Electronics and Information Systems , Ghent University , Ghent , Belgium.
Article Info
Journal
Drug delivery
Abbr.
Drug Deliv
ISSN
1521-0464
Published
2019-12-00
Pages
404-415
Language
English
Region
England
NLM ID
9417471
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