Mitochondria-targeted carbon monoxide delivery combined with singlet oxygen production from a single nanoplatform under 808 nm light irradiation for synergistic anticancer therapy.
Qi TangHai-Lin ZhangYi WangJing LiuShi-Ping YangJin-Gang LiuPublished in: Journal of materials chemistry. B (2021)
A multifunctional nanoplatform (1), MnCO@TPP@C-TiO2, which consists of a carrier of carbon-doped TiO2 nanoparticles with surface covalent functionalization of manganese carbonyls and a directing group of triphenylphosphine, was prepared for mitochondria-targeted carbon monoxide (CO) delivery combined with photodynamic therapy (PDT). MnCO@TPP@C-TiO2 selectively localized in the mitochondria of HeLa cells where the overexpressed-H2O2 triggered CO release resulting in mitochondrial damage. And singlet oxygen species generated upon 808 nm near infrared light irradiation further destroyed the mitochondria and induced cancer cells apoptosis. Cytotoxicity assays revealed that the nanoplatform with mitochondria-targeted CO delivery and PDT exhibited the highest lethality against cancer cells in comparison with all the other control samples tested, and it showed good dark biocompatibility with normal cells that express low H2O2 levels. This work may provide new insights into combining CO-based gas therapy with traditional PDT for efficient cancer treatment.
Keyphrases
- photodynamic therapy
- cell cycle arrest
- cell death
- cancer therapy
- induced apoptosis
- fluorescence imaging
- quantum dots
- oxidative stress
- endoplasmic reticulum
- reactive oxygen species
- endoplasmic reticulum stress
- pi k akt
- drug delivery
- visible light
- stem cells
- high throughput
- mesenchymal stem cells
- cell therapy
- diabetic rats
- bone marrow
- energy transfer
- transition metal