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.

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.

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