材料科学
葡萄糖氧化酶
纳米技术
生物物理学
生物传感器
生物
作者
Zhanlin Zhang,Kun Wei,Jie Meng,Junwu Wei,Yu Su,Huan Tan,Xiaohong Li
标识
DOI:10.1002/adhm.202501280
摘要
Abstract Piezoelectrodynamic therapy (PEDT) is compromised by hypoxia dilemma of tumors, while starvation therapy is constrained by insufficient enzyme activities. To address these challenges, Janus piezoelectric nanoparticles (NPs) are proposed to spatially immobilize glucose oxidase (GOx) and catalase (CAT), enabling piezoelectric potential‐amplified enzyme activities and synergistic PEDT‐starvation tumor therapy. Here hollow barium titanate (hBT) NPs are synthesized using SiO 2 templates, followed by partial Au deposition via the Pickering emulsion‐masking method to create Janus hBT@Au NPs, which are then conjugated with GOx and CAT on opposing sides to yield C‐hBT@Au‐G NPs. The hollow structure of hBT enhances flexibility and deformation under ultrasonication, while Schottky heterojunctions with Au layers promote charge carrier transfer, amplifying piezoelectric effects and free electron transfer to boost GOx activities. Piezoelectric field‐enhances selective tumor cell internalization of NPs and PEDT generation of reactive oxygen species (ROS), coupled with self‐propagated GOx/CAT cascades, intensify tumor cytotoxicities and deplete intracellular adenosine triphosphate. The Janus architecture, ultrasonic cavitation, and O 2 generation collaboratively drive robust propulsion for efficient NP accumulation and deep ROS penetration into tumor tissues, thereby achieving full tumor suppression with negligible systemic toxicity. This design overcomes delivery barriers of tumor accumulation, intratumoral penetration, and cellular uptake and synergizes PEDT‐starvation tumor therapy.
科研通智能强力驱动
Strongly Powered by AbleSci AI