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Evaluation of Nanoparticle Uptake in Tumors in Real Time Using Intravital Imaging
Published on: June 21, 2011
Extension of a multiphase tumour growth model to study nanoparticle delivery to solid tumours
Barbara Wirthl1, Johannes Kremheller1, Bernhard A Schrefler2,3
1Institute for Computational Mechanics, Technical University of Munich, Garching b. München, Germany.
Abstract:
One of the main challenges in increasing the efficacy of conventional chemotherapeutics is the fact that they do not reach cancerous cells at a sufficiently high dosage. In order to remedy this deficiency, nanoparticle-based drugs have evolved as a promising novel approach to more specific tumour targeting. Nevertheless, several biophysical phenomena prevent the sufficient penetration of nanoparticles in order to target the entire tumour. We therefore extend our vascular multiphase tumour growth model, enabling it to investigate the influence of different biophysical factors on the distribution of nanoparticles in the tumour microenvironment. The novel model permits the examination of the interplay between the size of vessel-wall pores, the permeability of the blood-vessel endothelium and the lymphatic drainage on the delivery of particles of different sizes. Solid tumours develop a non-perfused core and increased interstitial pressure. Our model confirms that those two typical features of solid tumours limit nanoparticle delivery. Only in case of small nanoparticles is the transport dominated by diffusion, and particles can reach the entire tumour. The size of the vessel-wall pores and the permeability of the blood-vessel endothelium have a major impact on the amount of delivered nanoparticles. This extended in-silico tumour growth model permits the examination of the characteristics and of the limitations of nanoparticle delivery to solid tumours, which currently complicate the translation of nanoparticle therapy to a clinical stage.
Insights
Nanoparticle drug delivery faces challenges reaching solid tumors due to biophysical factors. Smaller nanoparticles, aided by diffusion, show better tumor penetration, improving targeted cancer therapy.
Area of Science:
- Biomedical Engineering
- Computational Biology
- Oncology
Background:
- Conventional chemotherapy struggles with insufficient dosage reaching cancer cells.
- Nanoparticle-based drugs offer targeted tumor delivery but face penetration limitations.
- Tumor microenvironment biophysics impede effective nanoparticle distribution.
Purpose of the Study:
- To investigate biophysical factors influencing nanoparticle distribution in tumors.
- To analyze the impact of vessel pore size, endothelium permeability, and lymphatic drainage on nanoparticle delivery.
- To model the interplay of nanoparticle size and tumor characteristics on delivery efficacy.
Main Methods:
- Extension of a vascular multiphase tumor growth model.
- In-silico investigation of nanoparticle transport dynamics.
- Simulation of varying nanoparticle sizes and tumor microenvironment parameters.
Main Results:
- Tumor features like non-perfused cores and high interstitial pressure limit nanoparticle delivery.
- Small nanoparticle transport is diffusion-dominated, enabling wider tumor reach.
- Vessel pore size and endothelial permeability significantly affect delivered nanoparticle quantities.
Conclusions:
- The developed in-silico model elucidates limitations in nanoparticle delivery to solid tumors.
- Understanding these biophysical factors is crucial for advancing nanoparticle therapy translation.
- Optimizing nanoparticle size and considering tumor microenvironment are key for clinical success.

