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Published on: December 16, 2010
Ultrasound-Activated FeSnO(OH)5/Cu2S Heterojunction Microneedles Coordinate Redox Catalysis and Metal-Ion
Zhuo Xiao1, Yuexin Li1, Chunyu Yang1
1Key Laboratory of Photochemical Biomaterials and Energy Storage Materials, Heilongjiang Province and College of Chemistry and Chemical Engineering, Harbin Normal University, Harbin150025, China.
Abstract:
An ultrasound-activated microneedle patch (FCSP-MN) was developed for localized tumor therapy by integrating FeSnO(OH)5/Cu2S heterojunction nanoparticles (FCS) and phloretin into pH-responsive poly(acrylic acid)/poly(vinylpyrrolidone) microneedle tips. Heterojunction formation promoted interfacial charge redistribution, with approximately 1.942 electrons transferred from Cu2S to FeSnO(OH)5, and reduced the calculated energy barrier of the rate-determining peroxidase-like step from 2.38 to 2.03 eV. Consequently, FCS enhanced ultrasound-triggered singlet oxygen and hydroxyl radical generation, peroxidase-like catalysis, and glutathione depletion, thereby amplifying oxidative stress. The microneedles enabled efficient skin penetration and acidity-responsive delivery, releasing approximately 80% of phloretin at pH 5.4 vs 40% at pH 7.4 within 80 min, while ultrasound accelerated tip dissolution. In 4T1 cells, FCS and phloretin (FCSP) combined with ultrasound induced pronounced oxidative and mitochondrial damage accompanied by ferroptosis- and cuproptosis-associated responses, including lipid peroxidation, glutathione peroxidase 4 suppression, and dihydrolipoamide S-acetyltransferase oligomerization. In 4T1 tumor-bearing mice, FCSP-MN plus ultrasound achieved the strongest tumor-growth suppression among the tested treatments, with stable body weight and no obvious histological injury to major organs. This platform couples heterointerface-enhanced redox catalysis, responsive local delivery, and Fe/Cu dyshomeostasis for multimodal tumor therapy.
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