Novel biodegradable two-dimensional vanadene augmented photoelectro-fenton process for cancer catalytic therapy.
basic_science · Level V
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- Record sourced from PubMed, PMID 36084481.
- Also identified by DOI 10.1016/j.biomaterials.2022.121791.
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Abstract
Fenton reaction-based chemodynamic therapy is hardly a self-sufficient cancer treatment, due to its stringent reaction conditions, limited substrate concentration, and negative feedback from the tumor microenvironment. Herein, we synthesized a novel two-dimensional (2D) vanadium-based nanosheets (Vanadene, V NSs) with polyvalent surfaces (V<sup>IV</sup>/V<sup>V</sup>), a very narrow band gap of 0.8 eV, and high biodegradability by a liquid-phase exfoliation strategy. The polyvalent surface endowed its multiple capabilities to modulate TME through GSH consumption and O<sub>2</sub> production via V<sup>V</sup> and to catalyze a Fenton-like reaction to produce ·OH under a mild condition via V<sup>IV</sup>. In addition, efficient energy conversions including near-infrared (NIR)-thermal conversion (photothermal therapy, PTT) and NIR-electron conversion (photodynamic therapy, PDT) were ensured by the narrow band gap, in which NIR-thermal conversion enhanced the Fenton-like reaction activity through accelerating ionization while NIR-electron conversion catalyzed the conversion of O<sub>2</sub> to ·O<sub>2</sub><sup>-</sup> for further breaking redox homeostasis. Moreover, V NSs-based nanocatalyst can be slowly degraded into non-toxic species, enabling it to be innocuously eliminated from the body after completing tumor eradication by single drug injection and single NIR irradiation. Therefore, this study provides new insights into a universal nanoplatform for NIR-enhanced combination cancer therapy, highlighting the utility of 2D V NSs in the field of biomedicine.
Medical subject headings
- Nanoparticles
- Neoplasms
- Photochemotherapy