Pharmacological and physical vessel modulation strategies to improve EPR-mediated drug targeting to tumors

Publication date

2017-09-15

Authors

Ojha, TarunISNI 0000000506032828
Pathak, Vertika
Shi, YangISNI 0000000527247967
Hennink, W EISNI 0000000390382745
Moonen, Chrit T W
Storm, GertISNI 0000000042534976
Kiessling, Fabian
Lammers, TwanISNI 0000000057759211

Editors

Advisors

Supervisors

Document Type

Article
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License

taverne

Abstract

The performance of nanomedicine formulations depends on the Enhanced Permeability and Retention (EPR) effect. Prototypic nanomedicine-based drug delivery systems, such as liposomes, polymers and micelles, aim to exploit the EPR effect to accumulate at pathological sites, to thereby improve the balance between drug efficacy and toxicity. Thus far, however, tumor-targeted nanomedicines have not yet managed to achieve convincing therapeutic results, at least not in large cohorts of patients. This is likely mostly due to high inter- and intra-patient heterogeneity in EPR. Besides developing (imaging) biomarkers to monitor and predict EPR, another strategy to address this heterogeneity is the establishment of vessel modulation strategies to homogenize and improve EPR. Over the years, several pharmacological and physical co-treatments have been evaluated to improve EPR-mediated tumor targeting. These include pharmacological strategies, such as vessel permeabilization, normalization, disruption and promotion, as well as physical EPR enhancement via hyperthermia, radiotherapy, sonoporation and phototherapy. In the present manuscript, we summarize exemplary studies showing that pharmacological and physical vessel modulation strategies can be used to improve tumor-targeted drug delivery, and we discuss how these advanced combination regimens can be optimally employed to enhance the (pre-) clinical performance of tumor-targeted nanomedicines.

Keywords

Disruption, Drug delivery, EPR, Hyperthermia, Nanomedicine, Normalization, Permeabilization, Phototherapy, Promotion, Radiotherapy, Sonoporation, Tumor targeting, Taverne, Pharmaceutical Science

Citation

Ojha, T, Pathak, V, Shi, Y, Hennink, W E, Moonen, C T W, Storm, G, Kiessling, F & Lammers, T 2017, 'Pharmacological and physical vessel modulation strategies to improve EPR-mediated drug targeting to tumors', Advanced Drug Delivery Reviews, vol. 119, pp. 44-60. https://doi.org/10.1016/j.addr.2017.07.007