In our current society, therapeutic strategies against cancer suffer from dose-limiting toxicity, lack of specificity and high morbidity. To overcome this, the use of nanomaterials (NMs) is rising, where several NM formulations are undergoing clinical trials or are used in clinics where the NMs are used as drug delivery vehicles or as mediators in physical anticancer methods (e.g. hyperthermia), where to date, the success rate is limited due to low tumor targeting efficacy, lack of specificity and frequent re-use of classical toxicity mechanisms.
To overcome these issues, this research program aims to exploit the intrinsic toxicity of certain types of metal-based, degradation-prone NMs towards only cancer cells as a novel and generic anti-cancer tool with:
improved efficacy against difficult to treat cancers such as multidrug-resistant cancer cells
enhanced specificity and selectivity of the treatment by the intrinsic cancer cell-specific toxicity of NMs towards cancer cells.
These NMs therefore offer high potential against difficult to treat tumor types, where special tumor cells, such as cancer stem cells, which are renowned to be resistant against many types of classical therapy. In doing so, these NMs can be used as a novel therapeutic tool to combat the cells that escape classical treatments.
A major limitation of NM therapy is the poor biodistribution, where intravenously administered NMs struggle to reach the actual tumor site, but mainly end up in other organs, such as liver, spleen, lungs or kidneys. To overcome this problem, many attempts have been made to alter NM properties by changing its surface, either by trying to hide the NMs from immune cells, or by attaching antibodies or small peptides that bind specific epitopes on the cancer cell surface. So far, these attempts have not been very succesful, and here a biological vehicle will be used to try and carry the NMs to the tumor site in an active transport manner, rather than the NM being pushed by the blood stream and entering the tumor by chance. For this, the NMs will be coupled to so-called tumor-homing cells, which upon administration, travel towards the tumor automatically. Control over NM release into the tumor mass will then enable us to signifcantly increase the level of NMs at the tumor site.
The increase in targeted delivery is vital for improving therapeutic efficacy, as more therapeutic agent can be delivered to the site where it is needed, while less therapeutic agent would be present in other areas, reducing any undesired side-effects.