Intranuclear biophotonics by smart design of nuclear-targeting photo-/radio-sensitizers co-loaded upconversion nanoparticles

  • Wenpei Fan
  • , Bo Shen
  • , Wenbo Bu
  • , Xiangpeng Zheng
  • , Qianjun He
  • , Zhaowen Cui
  • , Dalong Ni
  • , Kuaile Zhao
  • , Shengjian Zhang
  • , Jianlin Shi*
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

76 Scopus citations

Abstract

Biophotonic technology that uses light and ionizing radiation for positioned cancer therapy is a holy grail in the field of biomedicine because it can overcome the systemic toxicity and adverse side effects of conventional chemotherapy. However, the existing biophotonic techniques fail to achieve the satisfactory treatment efficacy, which remains a big challenge for clinical implementation. Herein, we develop a novel theranostic technique of "intranuclear biophotonics" by the smart design of a nuclear-targeting biophotonic system based on photo-/radio-sensitizers covalently co-loaded upconversion nanoparticles. These nuclear-targeting biophotonic agents can not only generate a great deal of multiple cytotoxic reactive oxygen species in the nucleus by making full use of NIR/X-ray irradiation, but also produce greatly enhanced intranuclear synergetic radio-/photodynamic therapeutic effects under the magnetic/luminescent bimodal imaging guidance, which may achieve the optimal efficacy in treating radio-resistant tumors. We anticipate that the highly effective intranuclear biophotonics will contribute significantly to the development of biophotonic techniques and open new perspectives for a variety of cancer theranostic applications.

Original languageEnglish
Pages (from-to)89-98
Number of pages10
JournalBiomaterials
Volume69
DOIs
StatePublished - 1 Nov 2015
Externally publishedYes

Keywords

  • Intranuclear biophotonics
  • Magnetic/luminescent bimodal imaging
  • Photo-/radio-sensitizers
  • Synergetic radio-/photodynamic therapy
  • Upconversion nanoparticles

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