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Published on: December 1, 2016
Paclitaxel-Loaded, Pegylated Carboxylic Graphene Oxide with High Colloidal Stability, Sustained, pH-Responsive
Athina Angelopoulou1, Myria Papachristodoulou1, Efstathia Voulgari1
1Department of Pharmacy, Medical School, University of Patras, 26504 Patras, Greece.
Abstract:
Background: Graphene Oxide (GO) has shown great potential in biomedical applications for cancer therapeutics. The biosafety and stability issues of GO in biological media have been addressed by functionalization with polyethylene glycol (PEG). Methods: In this work, carboxylated, nanosized GO (nCGO) was evaluated as a potential carrier of paclitaxel (PCT). The effect of PEG characteristics on particle size and surface charge, colloidal stability, drug, and release, and the hemolytic potential of nCGO, was investigated. Optimum PEG-nCGO/PCT formulations based on the above properties were evaluated for their anticancer activity (cytotoxicity and apoptosis induction) in the A549 lung cancer cell line. Results: An increase in the length of linear PEG chains and the use of branched (4-arm) instead of linear PEG resulted in a decrease in hydrodynamic diameter and an increase in ζ potential of the pegylated nCGO particles. Pegylated nCGO exhibited high colloidal stability in phosphate-buffered saline and in cell culture media and low hemolytic effect, even at a relatively high concentration of 1 mg/mL. The molecular weight of PEG and branching adversely affected PCT loading. An increased rate of PCT release at an acidic pH of 6.0 compared to the physiological pH of 7.4 was observed with all types of pegylated nCGO/PCT. Pegylated nCGO exhibited lower cytotoxicity and apoptotic activity than non-pegylated nCGO. Cellular uptake of pegylated nCGO increased with incubation time with cells leading to increased cytotoxicity of PEG-nCGO/PCT with incubation time, which became higher than that of free PCT at 24 and 48 h of incubation. Conclusions: The increased biocompatibility of the pegylated nCGO and the enhanced anticancer activity of PEG-nCGO/PCT compared to free PCT are desirable properties with regard to the potential clinical application of PEG-nCGO/PCT as an anticancer nanomedicine.
Insights
Polyethylene glycol (PEG)-functionalized graphene oxide (GO) nanoparticles show improved biocompatibility and stability for cancer drug delivery. PEG-GO nanoparticles carrying paclitaxel (PCT) demonstrated enhanced anticancer activity compared to free PCT in lung cancer cells.
Area of Science:
- Biomedical Engineering
- Materials Science
- Nanotechnology
Background:
- Graphene oxide (GO) shows promise for cancer therapeutics but faces biosafety and stability challenges.
- Polyethylene glycol (PEG) functionalization addresses these issues, enhancing GO's biocompatibility and stability in biological environments.
Purpose of the Study:
- To evaluate carboxylated, nanosized GO (nCGO) as a paclitaxel (PCT) carrier.
- To investigate the impact of PEG characteristics on nCGO properties and PCT delivery.
- To assess the anticancer efficacy of optimized PEG-nCGO/PCT formulations in A549 lung cancer cells.
Main Methods:
- Synthesized and characterized PEGylated nCGO nanoparticles.
- Investigated the effect of PEG chain length and branching on particle size, surface charge, and colloidal stability.
- Assessed PCT loading, release kinetics at different pH values, and hemolytic potential.
- Evaluated in vitro anticancer activity, including cytotoxicity and apoptosis induction in A549 cells.
Main Results:
- PEGylation decreased particle size and increased surface charge, enhancing colloidal stability and reducing hemolytic effects.
- PEG characteristics influenced PCT loading, with higher molecular weight and branching reducing drug loading.
- Increased PCT release was observed at acidic pH (6.0) compared to physiological pH (7.4).
- PEG-nCGO/PCT showed increased cytotoxicity and apoptosis induction over time, surpassing free PCT at 24 and 48 hours.
Conclusions:
- PEGylated nCGO nanoparticles offer improved biocompatibility and stability for drug delivery.
- PEG-nCGO/PCT formulations exhibit enhanced anticancer activity, suggesting potential for clinical applications in nanomedicine.
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