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Updated: Jan 6, 2026

Anticancer Efficacy of Photodynamic Therapy with Lung Cancer-Targeted Nanoparticles
Published on: December 1, 2016
Synthesis of CNP-SAR405 delivery system for improved therapeutics anticancer activity using A549 human lung cancer
Ruqayyah A Bashirah1, Nur Balqis Zamri1,2, Noorjahan Banu Alitheen1
1Department of Cell and Molecular Biology, Faculty of Biotechnology and Biomolecular Sciences, Universiti Putra Malaysia, 43400, Serdang, Selangor, Malaysia.
Abstract:
Autophagy, a critical homeostatic process, is increasingly implicated in cancer progression and therapy resistance. SAR405 is a potent inhibitor of the autophagy related PIK3C3/VPS34 complex, offering potential as an anticancer agent. This study reports the synthesis, characterization, and biological evaluation of SAR405-loaded chitosan nanoparticles (CNP-SAR405) designed to improve therapeutic delivery and efficacy in A549 human lung carcinoma cells. CNPs were prepared via ionic gelation using chitosan and sodium tripolyphosphate (TPP), yielding stable monodisperse nanoparticles ~ 77.4 nm, PDI ~ 0.2). Upon SAR405 encapsulation, nanoparticle size increased to ~ 110 nm while maintaining uniform distribution. Encapsulation efficiency reached 80% at 200 nM SAR405, confirmed by UV-Vis spectroscopy. Morphological analyses using FESEM and TEM verified spherical nanoparticle structures, while FTIR confirmed successful SAR405 incorporation. FITC-labelling enabled real-time tracking of intracellular uptake, revealing detectable internalization as early as 12 h post-treatment, with fluorescence intensity peaking at 72 h. In vitro cytotoxicity assays demonstrated enhanced anticancer efficacy of CNP-SAR405 compared to free SAR405, CNP-SAR405 achieved similar cytotoxic effects at 69 nM compared to 100 nM for free SAR405 in A549 cells. Furthermore, co-treatment with the autophagy inducer Torin-2 validated that CNP-SAR405 more effectively inhibited autophagosome formation than SAR405 alone, particularly at the 24-h mark. These findings underscore the potential of chitosan nanoparticle-mediated delivery to increase SAR405 bioavailability and anticancer potency while achieving comparable cytotoxic at a lower dose than free SAR405. The CNP-SAR405 formulation represents a promising nanotechnology-driven approach to targeted lung cancer therapy. All experiments were performed in triplicate biological replicates with technical triplicates, and data were analysed using one-way ANOVA followed by Tukey's multiple comparison post-hoc test (p < 0.05 considered significant).
Insights
Chitosan nanoparticles loaded with SAR405 enhance lung cancer therapy by improving drug delivery and efficacy. This nanotechnology approach delivers potent anticancer effects at lower doses compared to free SAR405.
Area of Science:
- Nanotechnology
- Cancer Biology
- Pharmacology
Background:
- Autophagy is crucial in cancer progression and resistance to therapy.
- SAR405 is a novel autophagy inhibitor targeting the PIK3C3/VPS34 complex with anticancer potential.
Purpose of the Study:
- To synthesize and characterize SAR405-loaded chitosan nanoparticles (CNP-SAR405).
- To evaluate the enhanced therapeutic efficacy of CNP-SAR405 in A549 human lung carcinoma cells.
Main Methods:
- Chitosan nanoparticles (CNPs) prepared via ionic gelation.
- SAR405 encapsulation efficiency determined by UV-Vis spectroscopy.
- Nanoparticle characterization using DLS, FESEM, TEM, and FTIR.
- In vitro cytotoxicity and autophagy inhibition assays performed on A549 cells.
Main Results:
- Stable, monodisperse CNPs (~77.4 nm) were produced, with SAR405 encapsulation increasing size to ~110 nm and achieving 80% efficiency.
- CNP-SAR405 demonstrated enhanced in vitro cytotoxicity against A549 cells, achieving similar effects at a lower concentration (69 nM) than free SAR405 (100 nM).
- CNP-SAR405 significantly inhibited autophagosome formation more effectively than SAR405 alone, particularly at 24 hours.
Conclusions:
- Chitosan nanoparticle delivery enhances SAR405 bioavailability and anticancer potency.
- CNP-SAR405 represents a promising nanotechnology-based strategy for targeted lung cancer therapy.
- This formulation offers improved efficacy and reduced dosage requirements compared to free SAR405.
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