Near infrared excitation of an upconversion nanoparticle@TiO<sub>2</sub>-nitrate system to generate nitrate radicals for deep tissue penetration in tumor catalytic therapy.
basic_science · Level V
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- Record sourced from PubMed, PMID 41173132.
- Also identified by DOI 10.1016/j.actbio.2025.10.051.
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Abstract
Tumor catalytic therapy is challenged by uncontrolled reaction sites and limited radical diffusion, leading to both safety concerns and insufficient therapeutic depth. Here, we develop an injectable UCNPs@TiO<sub>2</sub>-nitrate hydrogel system that enables intratumoral, in situ generation of long-lived nitrate radicals (•NO<sub>3</sub>, t<sub>1/2</sub> ≈ 60 μs) with superior diffusion capability under near-infrared (NIR) irradiation. In this system, upconversion nanoparticles convert 980 nm NIR light into ultraviolet (UV) emission, which activates TiO<sub>2</sub> to generate oxidative holes that catalyze NO<sub>3</sub><sup>-</sup> into •NO<sub>3</sub>. The hydrogel matrix spatially confines radical generation within the tumor site, achieving controlled and sustained release. Compared to conventional short-lived •OH systems, •NO<sub>3</sub> exhibits enhanced penetration and prolonged reactivity, and its combination with •OH provides synergistic oxidative damage. In vitro and in vivo results demonstrate that the dual-radical system significantly improves tumor suppression while maintaining favorable biocompatibility. This work offers a robust strategy to overcome the diffusion and safety limitations of conventional catalytic therapy by achieving spatiotemporally confined and synergistic radical generation within tumors. STATEMENT OF SIGNIFICANCE: This study introduces a hydrogel platform that converts near-infrared light into UV to activate TiO<sub>2</sub> and generate long-lived nitrate radicals (•NO<sub>3</sub>) in vivo. These radicals offer extended lifetime and reactivity, allowing deeper tumor penetration compared to traditional short-lived species like •OH. The system achieves spatiotemporally controlled radical release at tumor sites, enhancing catalytic therapy precision. A dual-radical strategy combining •NO<sub>3</sub> and •OH further boosts therapeutic efficacy. Importantly, this approach shows minimal systemic toxicity and strong translational potential. These findings expand the reactive species toolbox and offer a promising direction for radical-based cancer therapy.
Medical subject headings
- Titanium
- Nitrates
- Infrared Rays
- Nanoparticles
- Neoplasms