Piezoelectric stimulation regulates cellular metabolism and enhances bone repair. However, the overproduction of reactive oxygen species (ROS) and hypoxia-induced oxidative stress reduce the efficacy of electrical stimulation and hinder regeneration. Here, a platinum-decorated graphdiyne oxide (GDYO@Pt) multifunctional piezoelectric semiconductor was engineered to eliminate ROS and oxygen self-supply while enabling electrical stimulation. In this system, the interface dipole drives a built-in electric field, triggering charge redistribution in GDYO and breaking symmetry to amplify piezoelectricity. Ultrasound-triggered polarized charges at the Schottky junction lower the barrier and promote GDYOâPt electron transfer for hydrogen production, where the generated H(2) neutralizes cytotoxic â¢OH radicals, while the holes/nanozyme drive H(2)O(2)âââO(2) conversion, synergistically alleviating oxidative stress. In vitro and vivo studies demonstrate that ultrasound-activated GDYO@Pt accelerates cranial defect repair via osteogenesis, angiogenesis, and immunomodulation. This work shows piezoelectric-catalytic synergistic bone regeneration, where the GDYO@Pt heterointerface integrates energy conversion with biological regulation through an engineered asymmetric structure.
Schottky engineering of GDYO@Pt to boost piezoelectric and oxidative stress modulation for accelerated cranial regeneration.
肖特基工程改造 GDYO@Pt 以增强压电效应和氧化应激调节,从而加速颅骨再生
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作者:Song Kang, Geng Xuezheng, Yin Huan, Shi Yanzhu, Wang Jiawei, Yu Jiayu, Bai Mateng, Wang Lizhen, Xue Yurui, Song Chunli, Fan Yubo
| 期刊: | Nature Communications | 影响因子: | 15.700 |
| 时间: | 2025 | 起止号: | 2025 Sep 26; 16(1):8523 |
| doi: | 10.1038/s41467-025-63550-8 | 研究方向: | 骨科研究 |
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