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Published on: May 22, 2020
Efficacy of cationic polymer-coated magnesium oxide nanoparticles as anti-cancer candidates
Muhammad Hunain Shahid1, Maninder Singh1, Robin Rajan1
1Japan Advanced Institute of Science and Technology (JAIST), Nomi, Ishikawa, Japan.
Abstract:
Conventional cancer therapies are frequently limited by systemic toxicity and inadequate selectivity, necessitating the development of novel therapeutic approaches. Nanotechnology has emerged as a promising platform for achieving targeted and drug-free cancer treatments. In this study, we report a drug-free anti-cancer strategy based on cationic polymer-coated magnesium oxide nanoparticles (MgO NPs). The nanocomposites (NCs) were fabricated by grafting cationic 3-acrylamidopropyl trimethyl ammonium chloride (AMPTMA)-based polymers onto 3-aminopropyltriethoxysilane (APTES)-functionalized MgO NPs, thereby integrating the cytotoxic properties of MgO, potentially mediated by reactive oxygen species (ROS) generation and Mg²+ ion release, with the membrane-targeting capacity of cationic polymers. Cytotoxicity assessments indicated that commercial MgO NPs exhibited minimal anti-cancer activity. While both poly-AMPTMA (PAMPTMA) homopolymer and its copolymer (PAMPTMA-r-BuMA) demonstrated potent cytotoxicity, they lacked selectivity, affecting both cancerous and normal cells. In contrast, the polymer-modified MgO NCs markedly enhanced cytotoxicity against cancer cell lines (A-549 half-maximal inhibitory concentrations (IC50): 202 and 64 µg ml-1; Colon-26 IC50: 338 and 115 µg ml-1) while reducing toxicity towards normal cells (human dermal fibroblast (HDF) IC50: 180 and 226 µg ml-1). Notably, the MgO-APTES-PAMPTMA-r-BuMA nanocomposite exhibited superior selectivity and efficacy, presumably through enhanced membrane disruption and ROS production. These findings underscore the potential of polymer-functionalized MgO NCs as a promising drug-free anti-cancer platform and contribute to the advancement of nanomedicine-based therapeutics.
Insights
This study introduces novel cationic polymer-coated magnesium oxide nanoparticles (MgO NPs) for drug-free cancer treatment. These nanocomposites show enhanced cancer cell targeting and reduced toxicity to normal cells, offering a promising nanomedicine approach.
Area of Science:
- Nanomedicine
- Materials Science
- Oncology
Background:
- Conventional cancer therapies face challenges with systemic toxicity and poor selectivity.
- Nanotechnology offers potential for targeted, drug-free cancer treatments.
- Magnesium oxide nanoparticles (MgO NPs) possess inherent cytotoxic properties.
Purpose of the Study:
- To develop and evaluate drug-free anti-cancer nanocomposites using cationic polymer-coated MgO NPs.
- To investigate the synergistic effects of MgO NPs and cationic polymers on cancer cell lines.
- To assess the selectivity and efficacy of these nanocomposites against cancerous and normal cells.
Main Methods:
- Fabrication of nanocomposites by grafting cationic polymers (poly-AMPTMA and its copolymer) onto APTES-functionalized MgO NPs.
- Assessment of cytotoxicity using cancer cell lines (A-549, Colon-26) and normal cells (HDF).
- Evaluation of reactive oxygen species (ROS) generation and membrane disruption mechanisms.
Main Results:
- Commercial MgO NPs showed minimal anti-cancer activity.
- Cationic polymers alone were cytotoxic but lacked selectivity.
- Polymer-modified MgO nanocomposites demonstrated enhanced cancer cell cytotoxicity (e.g., lower IC50 values) and reduced toxicity to normal cells.
- The MgO-APTES-PAMPTMA-r-BuMA nanocomposite exhibited superior selectivity and efficacy.
Conclusions:
- Polymer-functionalized MgO NPs represent a promising drug-free anti-cancer therapeutic platform.
- The developed nanocomposites offer improved cancer cell targeting and selectivity.
- This approach advances nanomedicine for developing novel cancer treatments.

