Sequential magnetovortex thermal and Pt-augmented TiO2 sonodynamics achieve bursting reactive oxygen for imaging guided biofilm associated deep disinfection Научная публикация
| Журнал |
Materials and Design
ISSN: 1873-4197 |
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| Вых. Данные | Год: 2026, Том: 264, Номер статьи : 115823, Страниц : 13 DOI: 10.1016/j.matdes.2026.115823 | ||||||||||||||||||
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Реферат:
Polymicrobial infections and antibiotic-resistant strains often persist within biofilms, where undermine conventional chemotherapies. Here we introduce a sequentially activated antibacterial platform built on magnetic-vortex Fe3O4 nanorings coated with TiO2 and decorated with Pt nanoparticles. This alternating magnetic field (AMF) then ultrasound (US) sequence is designed to reactive oxygen species (ROS) amplification. AMF produces rapid, localized heating that swells biofilm, and increases bacterial envelope permeability. Subsequent US triggers TiO2 sonocatalysis through cavitation and sonoluminescence, generating electron-hole pairs; the Pt-TiO2 Schottky junction selectively traps electrons and suppresses recombination, extending carrier lifetimes and boosting interfacial reaction probability. In parallel, Pt exhibits nanozyme activity that converts endogenous H2O2 into short-lived reactive intermediates, amplifying ROS flux. In vitro, against four bacteria, the platform suppresses planktonic growth and disrupts biofilms with efficient membrane damage. In vivo, in subcutaneous and pulmonary infection models, the AMF → US regimen decreases bacterial burden and accelerates tissue restoration, outperforming multiple comparators while maintaining good biocompatibility and procedural safety. This magnetothermal preheating followed by sonocatalytic amplification establishes an antibiotic-free, imageable paradigm that couple’s biofilm disruption with potent bactericidal action, offering a generalizable engineering route for complex, polymicrobial, and resistance-associated infections.
Библиографическая ссылка:
Zhao Z.
, Wang R.
, Zhang J.
, Feng H.
, Guo S.
, Wang J.
, Song M.
, Fan D.
, Zhuang Y.
, Li J.
, Dong Y.
, Tulupov A.
, Wang Z.
, Bao J.
Sequential magnetovortex thermal and Pt-augmented TiO2 sonodynamics achieve bursting reactive oxygen for imaging guided biofilm associated deep disinfection
Materials and Design. 2026. V.264. 115823 :1-13. DOI: 10.1016/j.matdes.2026.115823 OpenAlex
Sequential magnetovortex thermal and Pt-augmented TiO2 sonodynamics achieve bursting reactive oxygen for imaging guided biofilm associated deep disinfection
Materials and Design. 2026. V.264. 115823 :1-13. DOI: 10.1016/j.matdes.2026.115823 OpenAlex
Даты:
| Поступила в редакцию: | 5 дек. 2025 г. |
| Принята к публикации: | 10 мар. 2026 г. |
| Опубликована online: | 14 мар. 2026 г. |
| Опубликована в печати: | 16 мар. 2026 г. |
Идентификаторы БД:
| ≡ OpenAlex: | W7135389305 |