Self-assembled micelles loaded with itraconazole as anti-Acanthamoeba nano-formulation

Komal Rao1, Muhammad Abdullah1, Usman Ahmed2

  • 1International Center for Chemical and Biological Sciences, HEJ Research Institute of Chemistry, Karachi University, Karachi, 75270, Pakistan.

PubMed

Insights

A novel amphiphilic star polymer effectively encapsulates itraconazole (ITZ), significantly enhancing its anti-amoebic activity against Acanthamoeba infections with limited human cell toxicity. This polymer micelle formulation shows promising potential for treating Acanthamoeba keratitis and granulomatous amoebic encephalitis.

Area of Science:

  • Polymer Chemistry and Nanotechnology
  • Infectious Diseases and Microbiology
  • Drug Delivery Systems

Background:

  • Acanthamoeba castellanii causes severe infections like granulomatous amoebic encephalitis and Acanthamoeba keratitis.
  • Current treatments for these infections are problematic and exhibit toxicity.
  • There is a critical need for safer and more effective therapeutic strategies.

Purpose of the Study:

  • To synthesize and characterize a novel amphiphilic star polymer with AB2 miktoarms.
  • To develop a drug delivery system by incorporating itraconazole (ITZ) into self-assembled polymer micelles.
  • To evaluate the anti-amoebic efficacy and cytotoxicity of the ITZ-loaded micelles.

Main Methods:

  • Synthesis of an amphiphilic star polymer (poly(ℇ-Caprolactone)-poly(ethylene glycol)2) via ring-opening polymerization and click chemistry.
  • Incorporation of hydrophobic itraconazole (ITZ) into polymer micelles using co-solvent evaporation.
  • Characterization of micelles (blank and ITZ-loaded) using techniques like DLS, SEM, and FTIR.
  • In vitro evaluation of anti-amoebic activity against Acanthamoeba trophozoites and cytotoxicity assays on human keratinocyte cells.

Main Results:

  • The synthesized polymer self-assembled into micelles with a low critical micelle concentration (CMC) of 0.05-0.06 µg/mL.
  • The maximum entrapment efficiency for ITZ was 68%.
  • ITZ-loaded micelles (ITZ-PCL-PEG2) demonstrated significantly higher inhibition of Acanthamoeba trophozoites (68.24%) compared to free ITZ (37.34%).
  • ITZ-PCL-PEG2 micelles exhibited limited cytotoxicity against human keratinocyte cells.

Conclusions:

  • The developed ITZ-loaded amphiphilic star polymer micelles show enhanced anti-amoebic efficacy compared to the free drug.
  • The formulation presents a promising, less toxic alternative for treating Acanthamoeba infections.
  • Further in vivo studies are warranted to explore the clinical potential of this novel drug delivery system.