4.8 Article

One-Step Preparation of a Water-Soluble Carbon Nanohorn/Phthalocyanine Hybrid for Dual-Modality Photothermal and Photodynamic Therapy

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 6, Issue 20, Pages 18008-18017

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/am504860c

Keywords

single-walled carbon nanohorns; metal phthalocyanine; photothermal therapy; photodynamic therapy

Funding

  1. Natural Science Foundation of China [21161003, 21364002]
  2. Guangxi Natural Science Foundation of China [2013GXNTSFGA019001, 2012GXNSFDA053007, 2014GXNSFBA118038]
  3. Program for New Century Excellent Talents in University of the Ministry of Education [NCET-13-0743]
  4. Program for New Century National Hundred, Thousand and Ten Thousand Talent Project of Guangxi
  5. State Key Laboratory Cultivation Base for the Chemistry and Molecular Engineering of Medicinal Resources [CMEMR2012-Al2, CMEMR2013-A8, CMEMR2013-A13]
  6. Program for Guangxi Scientific Research of Higher Education [YB2014052]
  7. Program for Key Scientific Research of Guangxi Normal University [2013ZD005]

Ask authors/readers for more resources

The biomedical applications of carbon nanomaterials, especially integrating noninvasive photothermal therapy (PTT) and photodynamic therapy (PDT), into a single system have enormous potential in cancer therapy. Herein, we present a novel and facile one-step method for the preparation of water-soluble single-walled carbon nanohorns (SWNHs) and metal phthalocyanines (MPc) hybrid for PTT and PDT. The hydrophilic MPc, tetrasulfonic acid tetrasodium salt copper phthalocyanine (TSCuPc), is coated on the surface of SWNHs via noncovalent pi-pi interaction using the sonication method. In this PTT/PDT nanosystem, SWNHs acts as a photosensitizer carrier and PTT agent, while TSCuPc acts as a hydrophilic and PDT agent. The EPR results demonstrated that the generated reactive oxygen species (ROS) not only from the photoinduced electron transfer process from TSCuPc to SWNHs but also from SWNHs without exciting TSCuPc to its excited state. The test of photothermal conversion proved that not only do SWNHs contribute to the photothermal therapy (PTT) effect, TSCuPc probably also contributes to that when it coats on the surface of SWNHs upon exposure to a 650-nm laser. More importantly, the results of in vitro cell viability revealed a significantly enhanced anticancer efficacy of combined noninvasive PTT/PDT, indicating that the SWNHs-TSCuPc nanohybrid is a hopeful candidate material for developing an efficient and biocompatible nanoplatform for biomedical application.

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