Multifunctional theranostic Pluronic mixed micelles improve targeted photoactivity of Verteporfin in cancer cells

  • Diogo Silva Pellosi
  • , Italo Rodrigo Calori
  • , Leonardo Barcelos de Paula
  • , Noboru Hioka
  • , Fabiana Quaglia
  • , Antonio Claudio Tedesco

Research output: Contribution to journalArticlepeer-review

53 Scopus citations

Abstract

Nanotechnology development provides new strategies to treat cancer by integration of different treatment modalities in a single multifunctional nanoparticle. In this scenario, we applied the multifunctional Pluronic P123/F127 mixed micelles for Verteporfin-mediated photodynamic therapy in PC3 and MCF-7 cancer cells. Micelles functionalization aimed the targeted delivery by the insertion of biotin moiety on micelle surface and fluorescence image-based through rhodamine-B dye conjugation in the polymer chains. Multifunctional Pluronics formed spherical nanoparticulated micelles that efficiently encapsulated the photosensitizer Verteporfin maintaining its favorable photophysical properties. Lyophilized formulations were stable at least for 6 months and readily reconstituted in aqueous media. The multifunctional micelles were stable in protein-rich media due to the dual Pluronic mixed micelles characteristic: high drug loading capacity provided by its micellar core and high kinetic stability due its biocompatible shell. Biotin surface functionalized micelles showed higher internalization rates due biotin-mediated endocytosis, as demonstrated by competitive cellular uptake studies. Rhodamine B-tagged micelles allowed monitoring cellular uptake and intracellular distribution of the formulations. Confocal microscopy studies demonstrated a larger intracellular distribution of the formulation and photosensitizer, which could drive Verteporfin to act on multiple cell sites. Formulations were not toxic in the dark condition, but showed high Verteporfin-induced phototoxicity against both cancer cell lines at low drug and light doses. These results point Verteporfin-loaded multifunctional micelles as a promising tool to further developments in photodynamic therapy of cancer.

Original languageEnglish (US)
Pages (from-to)1-9
Number of pages9
JournalMaterials Science and Engineering C
Volume71
DOIs
StatePublished - Feb 1 2017
Externally publishedYes

Keywords

  • Cancer
  • Drug delivery
  • Nanotechnology
  • Phototherapy
  • Targeting
  • Verteporfin

ASJC Scopus subject areas

  • General Medicine

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