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Manufacture and Drug Delivery Applications of Silk Nanoparticles
Published on: October 8, 2016
Silicane Derivative Increases Doxorubicin Efficacy in an Ovarian Carcinoma Mouse Model: Fighting Drug Resistance
Michaela Fojtů1,2,3, Jan Balvan2,3, Tomáš Vičar2,3
1Center for Advanced Functional Nanorobots, Department of Inorganic Chemistry, Faculty of Chemical Technology, University of Chemistry and Technology in Prague, Technická 5, Prague 16628, Czech Republic.
Abstract:
The development of cancer resistance continues to represent a bottleneck of cancer therapy. It is one of the leading factors preventing drugs to exhibit their full therapeutic potential. Consequently, it reduces the efficacy of anticancer therapy and causes the survival rate of therapy-resistant patients to be far from satisfactory. Here, an emerging strategy for overcoming drug resistance is proposed employing a novel two-dimensional (2D) nanomaterial polysiloxane (PSX). We have reported on the synthesis of PSX nanosheets (PSX NSs) and proved that they have favorable properties for biomedical applications. PSX NSs evinced unprecedented cytocompatibility up to the concentration of 300 μg/mL, while inducing very low level of red blood cell hemolysis and were found to be highly effective for anticancer drug binding. PSX NSs enhanced the efficacy of the anticancer drug doxorubicin (DOX) by around 27.8-43.4% on average and, interestingly, were found to be especially effective in the therapy of drug-resistant tumors, improving the effectiveness of up to 52%. Fluorescence microscopy revealed improved retention of DOX within the drug-resistant cells when bound on PSX NSs. DOX bound on the surface of PSX NSs, i.e., PSX@DOX, improved, in general, the DOX cytotoxicity in vitro. More importantly, PSX@DOX reduced the growth of DOX-resistant tumors in vivo with 3.5 times better average efficiency than the free drug. Altogether, this paper represents an introduction of a new 2D nanomaterial derived from silicane and pioneers its biomedical application. As advances in the field of material synthesis are rapidly progressing, novel 2D nanomaterials with improved properties are being synthesized and await thorough exploration. Our findings further provide a better understanding of the mechanisms involved in the cancer resistance and can promote the development of a precise cancer therapy.
Insights
A novel two-dimensional polysiloxane (PSX) nanomaterial overcomes cancer drug resistance. PSX nanosheets enhance chemotherapy efficacy, especially for resistant tumors, improving patient outcomes.
Area of Science:
- Materials Science
- Nanotechnology
- Biomedical Engineering
Background:
- Cancer drug resistance significantly limits therapeutic efficacy and patient survival.
- Novel strategies are needed to overcome resistance and improve anticancer drug performance.
- Two-dimensional (2D) nanomaterials offer promising platforms for drug delivery and therapy enhancement.
Purpose of the Study:
- To introduce and characterize a novel 2D polysiloxane (PSX) nanomaterial for biomedical applications.
- To evaluate the potential of PSX nanosheets (PSX NSs) in overcoming cancer drug resistance.
- To investigate the enhanced efficacy of anticancer drugs, such as doxorubicin (DOX), when bound to PSX NSs.
Main Methods:
- Synthesis and characterization of PSX nanosheets (PSX NSs).
- Assessment of PSX NSs' cytocompatibility and drug-binding capabilities.
- In vitro and in vivo evaluation of PSX NSs combined with doxorubicin (PSX@DOX) against drug-resistant cancer models.
Main Results:
- PSX NSs demonstrated excellent cytocompatibility and low red blood cell hemolysis.
- PSX NSs significantly enhanced the efficacy of doxorubicin (DOX) against cancer cells, particularly drug-resistant ones (up to 52% improvement).
- PSX@DOX showed superior in vivo tumor growth inhibition compared to free DOX (3.5 times better average efficiency).
Conclusions:
- PSX NSs represent a novel and effective 2D nanomaterial for enhancing anticancer therapy.
- The PSX@DOX formulation shows significant promise for overcoming drug resistance in cancer treatment.
- This study pioneers the biomedical application of silicane-derived 2D nanomaterials and advances understanding of cancer resistance mechanisms.

