4.8 Article

Magnetic and fluorescent graphene for dual modal imaging and single light induced photothermal and photodynamic therapy of cancer cells

期刊

BIOMATERIALS
卷 35, 期 15, 页码 4499-4507

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.biomaterials.2014.02.011

关键词

Graphene; Fluorescence imaging; Magnetic resonance imaging; Photodynamic therapy; Photothermal therapy

资金

  1. National Science Council of Taiwan [NSC 101-2627-M-007-005, NSC101-2113-M-007-006-MY3]
  2. National Tsing Hua University [99N2454E1]

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Developing a simple and cost-effective strategy to diagnose and treat cancer with single and minimal dosage through noninvasive strategies are highly challenging. To make the theranostic strategy effective, single light induced photothermal and photodynamic reagent with dual modal imaging capability is highly desired. Herein, a simple non-covalent approach was adopted to immobilize hydrophobic silicon napthalocyanine bis (trihexylsilyloxide) (SiNc(4)) photosensitizer onto water dispersible magnetic and fluorescent graphene (MFG) via pi-pi stacking to yield MFG SiNc(4) functioned as a theranostic nanocarrier. Taking the advantage of broad near infra-red absorption (600-1200 nm) by graphene, photo-sensitizer of any wavelength within this range will facilitate the single light induced phototherapy. Phosphorescence spectra, singlet oxygen sensor green (SOSG) experiments, and 1,3-diphenyl iso-benzofuran quenching studies confirm the generation of singlet O-1(2) upon photoirradiation. Confocal microscopic images reveal successful internalization of MFG-SiNc(4) in HeLa cells; whereas T-2-weighted magnetic resonance images of MFG reveal a significant concentration dependent darkening effect. In vitro photodynamic/photothermal therapeutic studies on HeLa cells have demonstrated that the killing efficacy of MFG SiNc(4) using a single light source is similar to 97.9%, presumably owing to the combined effects of generating reactive oxygen species, local heating, and induction of apoptosis. The developed MFG-SiNc(4) may thus be utilized as a potential theranostic nanocarrier for dual modal imaging and phototherapy of cancer cells with single light source for time and cost effective treatments with a minimal therapy dose. (C) 2014 Elsevier Ltd. All rights reserved.

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