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Cationic nanoparticles have superior transvascular flux into solid tumors: insights from a mathematical model
Triantafyllos Stylianopoulos1, Konstantinos Soteriou, Dai Fukumura
1Department of Mechanical and Manufacturing Engineering, University of Cyprus, 1678, Nicosia, Cyprus. tstylian@ucy.ac.cy
Abstract:
Despite their great promise, only a few nanoparticle formulations have been approved for clinical use in oncology. The failure of nano-scale drugs to enhance cancer therapy is in large part due to inefficient delivery. To overcome this outstanding problem, a better understanding of how the physical properties (i.e., size, surface chemistry, and shape) of nanoparticles affect their transvascular transport in tumors is required. In this study, we developed a mathematical model for nanoparticle delivery to solid tumors taking into account electrostatic interactions between the particles and the negatively-charged pores of the vessel wall. The model predictions suggest that electrostatic repulsion has a minor effect on the transvascular transport of nanoparticles. On the contrary, electrostatic attraction, caused even by small cationic charges (surface charge density less than 3 × 10(-3) C/m(2)) can lead to a twofold or more increase in the transvascular flux of nanoparticles into the tumor interstitial space. Importantly, for every nanoparticle size, there is a value of charge density above which a steep increase in transvascular transport is predicted. Our model provides important guidelines for the optimal design of nanoparticle formulation for delivery to solid tumors.
Insights
Optimizing nanoparticle delivery for cancer therapy requires understanding physical properties. Even slight positive charges significantly enhance nanoparticle transport into tumors, guiding better drug design.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Oncology
Background:
- Few nanoparticle formulations are approved for clinical oncology due to inefficient delivery.
- Understanding nanoparticle physical properties is crucial for enhancing cancer therapy.
Purpose of the Study:
- To develop a mathematical model for nanoparticle delivery to solid tumors.
- To investigate the effect of electrostatic interactions on nanoparticle transvascular transport.
Main Methods:
- Developed a mathematical model for nanoparticle transport.
- Incorporated electrostatic interactions between nanoparticles and vessel wall pores.
- Analyzed the impact of nanoparticle size and surface charge density.
Main Results:
- Electrostatic repulsion minimally affects nanoparticle transport.
- Electrostatic attraction, even with small cationic charges, can double nanoparticle flux into tumors.
- A critical charge density exists for each nanoparticle size, above which transport increases sharply.
Conclusions:
- Electrostatic attraction is a key factor in enhancing nanoparticle delivery to tumors.
- Model provides guidelines for designing nanoparticle formulations for improved tumor targeting.
- Optimizing surface charge is critical for effective nanoparticle-based cancer therapy.

