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Models and Methods to Evaluate Transport of Drug Delivery Systems Across Cellular Barriers
Published on: October 17, 2013
When drug nanocarriers miss their target: extracellular diffusion and cell uptake are not enough to be effective
Vincent Pautu1, Heng Zhao2, Angelika Mielcarek2
1Institut Galien Paris-Saclay, UMR 8612, CNRS, Université Paris-Saclay, Faculté de Pharmacie, 5 rue Jean-Baptiste Clément, F-92296 Châtenay-Malabry cedex, France. simona.mura@universite-paris-saclay.fr.
Abstract:
Biocompatible nanoscale iron carboxylate metal-organic frameworks (nanoMOFs) have already demonstrated their ability to efficiently deliver various therapeutic molecules. The versatility of the synthesis methods and functionalization strategies could further improve their drug carrier potential. However, in oncology, preclinical evaluation still suffers from the lack of relevant models able to mimic the heterogeneity and the microenvironment of human tumors. This may impact the significance of the preclinical data, hindering the clinical translation and drug development process. Motivated by this hurdle, a 3D lung tumor model is herein developed to investigate nanoMOFs, as bare nanoparticles or coated with polyethylene glycol. Loading with doxorubicin, as a model drug, enables the investigation of their penetration capacity and efficacy in the 3D tumor nodule. NanoMOFs carry a large cargo, can diffuse efficiently within the tumor and are capable of significant intracellular penetration. Nevertheless, they prove to be therapeutically ineffective because the loaded drug is sequestrated in the lysosomal compartment and does not reach the nucleus, the doxorubicin sub-cellular target. These results question the in vivo evaluation of these nanoMOFs and call for further optimization to achieve successful drug delivery.
Insights
Iron carboxylate nanoscale metal-organic frameworks (nanoMOFs) show promise for drug delivery but fail in a 3D lung tumor model. Doxorubicin sequestration limits therapeutic efficacy, highlighting the need for optimized nanoMOF design.
Area of Science:
- Nanotechnology
- Materials Science
- Oncology
Background:
- Biocompatible nanoscale metal-organic frameworks (nanoMOFs) are effective drug carriers.
- Preclinical cancer models lack human tumor heterogeneity and microenvironment relevance.
- This hinders clinical translation of nanomedicines.
Purpose of the Study:
- To develop a 3D lung tumor model for evaluating nanoMOF drug delivery.
- To investigate the penetration and efficacy of doxorubicin-loaded nanoMOFs in this model.
Main Methods:
- Fabrication of iron carboxylate nanoMOFs, bare and PEGylated.
- Loading nanoMOFs with doxorubicin (DOX).
- Evaluation of nanoMOF penetration and DOX release in a 3D lung tumor model.
Main Results:
- NanoMOFs efficiently penetrated the 3D tumor model and showed intracellular uptake.
- Doxorubicin was sequestered in lysosomes, failing to reach the nucleus.
- Therapeutic ineffectiveness was observed despite nanoMOF penetration.
Conclusions:
- The 3D lung tumor model revealed limitations in nanoMOF drug delivery systems.
- Lysosomal sequestration of doxorubicin prevents therapeutic efficacy.
- Further optimization of nanoMOFs is crucial for successful cancer therapy.
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