Nanoparticle engineering enhances anticancer efficacy of andrographolide in MCF-7 cells and mice bearing EAC
Partha Roy1, Suvadra Das, Anushree Mondal
1Department of Chemical Technology, University of Calcutta, Kolkata, India.
Abstract:
Success in cancer chemotherapy relies on efficient delivery of anti-neoplastic drugs, with minimal side-effects on non-cancerous cells. Nanoparticulation of prospective anti-cancer drugs, that were deemed unsuitable due to short biological half life, poor water solubility and low cellular permeability, has been hypothesized to generate superior chemotherapeutic agents, leading to reduced non-specific action and fewer side-effects. In lieu of the above, different synthetic modulations on the putative anti-cancer compound andrographolide (AG) were explored to improve its therapeutic efficiency. Our results indicated that PLGA-nanoparticulation of andrographolide diterpenoid enhanced its anti-cancer properties three fold. Chitosan coating of AG nanoparticles further accentuated cellular localization, induced G1 cell cycle arrest and increased cellular toxicity and apoptosis in MCF-7 cells. The charge modulated nanoparticles were seen to traverse more efficiently through the cytoplasm and accumulate in the nucleus, thus enhancing their anti-proliferative efficacy. In vivo studies confirm that the nanoparticles reduced tumor weight by 68.21% as compared to 24.7% by AG, and increased the life span of mice infected with Ehrlich ascites carcinoma (EAC) by 78.08% as compared to 23.5% for AG alone. This was achieved through development of slow release-type nanoparticle cargo delivery devices, and enhanced the efficiency of AGnps for targeting cancer cells. AG nanoparticles also showed sufficient promise as safe anti-cancer drugs since they had minimal impact on animal hematology. Hence, we successfully prepared non-toxic and delivery-efficient andrographolide nanoparticles, and established for the first time that PLGA-nanoparticulation of andrographolide and additional chitosan coating increased its anti-cancer efficacy in human breast cancer cells and mouse EAC model.
Insights
Nanoparticle formulation of andrographolide (AG) significantly boosted its anti-cancer effects. Chitosan-coated AG nanoparticles improved drug delivery, reduced tumor growth, and increased lifespan in cancer models.
Area of Science:
- Pharmacology
- Nanotechnology
- Oncology
Background:
- Effective cancer chemotherapy requires targeted drug delivery to minimize side effects.
- Andrographolide (AG), a natural compound, has limitations like poor solubility and permeability for cancer treatment.
- Nanoparticulation offers a strategy to overcome these limitations and enhance drug efficacy.
Purpose of the Study:
- To synthesize and characterize poly(lactic-co-glycolic acid) (PLGA)-based andrographolide nanoparticles (AGnps).
- To evaluate the enhanced anti-cancer efficacy of AGnps, with and without chitosan coating, in vitro and in vivo.
- To investigate the mechanism of action, including cellular uptake, cell cycle arrest, and apoptosis induction.
Main Methods:
- Andrographolide was encapsulated into PLGA nanoparticles, with some formulations further coated with chitosan.
- In vitro studies involved assessing cytotoxicity, cell cycle progression, and apoptosis in MCF-7 breast cancer cells.
- In vivo efficacy was evaluated using a mouse model of Ehrlich ascites carcinoma (EAC), monitoring tumor weight and animal survival.
Main Results:
- PLGA-nanoparticulation of AG enhanced its anti-cancer properties threefold.
- Chitosan coating improved cellular localization, induced G1 cell cycle arrest, and increased apoptosis in MCF-7 cells.
- In vivo, AG nanoparticles reduced tumor weight by 68.21% and increased lifespan by 78.08% compared to AG alone, with minimal impact on animal hematology.
Conclusions:
- PLGA-nanoparticulation and chitosan coating significantly enhance the anti-cancer efficacy of andrographolide.
- These modified nanoparticles demonstrate improved delivery, targeting, and therapeutic effects against breast cancer and EAC.
- The developed andrographolide nanoparticles are non-toxic, delivery-efficient, and show promise as superior chemotherapeutic agents.

