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超声激活的压电异质结驱动纳米酶催化,诱导细菌类铜死亡并促进骨血管生成和骨整合。

Ultrasound-activated piezoelectric heterojunction drives nanozyme catalysis to induce bacterial cuproptosis-like death and promote bone vascularization and osseointegration.

作者信息

Qiu Longhai, Ma Sushuang, Yang Ren, Zheng Dengwen, Huang Yuliang, Zhu Zhengwei, Peng Sijun, Li Mei, Zhong Hua, Peng Feng

机构信息

Department of Traumatology and Orthopaedic Surgery, Huizhou Central People's Hospital, Huizhou, 516001, China; Hui Zhou-Hong Kong Bone Health Joint Research Center, Institute of Orthopaedics, Huizhou Central People's Hospital, Huizhou, 516001, China.

Department of Orthopaedics, The Fifth Affiliated Hospital, Southerm Medical University, Guangzhou, 510009, China.

出版信息

Biomaterials. 2025 Sep;320:123249. doi: 10.1016/j.biomaterials.2025.123249. Epub 2025 Mar 5.

Abstract

Osteomyelitis is a severe and persistent bone infection that poses significant challenges to clinical treatment, often requiring prolonged antibiotic therapy and invasive procedures. Nanomaterial-based non-antibiotic therapies have emerged as promising alternatives in combating bacterial infections. However, effectively treating osteomyelitis while simultaneously promoting bone repair remains a challenge. Herein, we developed a nanoheterojunction catalytic reactor composed of copper ferrite (CuFeO) and molybdenum disulfide (MoS) quantum dots (CFO@MoS), leveraging ultrasound catalysis in combination with copper ions to induce bacterial cuproptosis-like death. Theoretical calculations indicate that the establishment of a heterojunction interface can accelerate oxygen adsorption, inducing electron flow toward oxygen atoms at the interface, thereby enhancing the separation of interface electron-hole pairs. Furthermore, copper ions released from CFO@MoS undergo valence state changes under ultrasound, activating the Fenton reaction and releasing reactive oxygen species to kill bacteria. Gene sequencing shows that CFO@MoS, when activated by ultrasound, disrupts bacterial energy synthesis, interferes with bacterial metabolism, and induces copper-related bacterial death. More importantly, the microcurrents generated by ultrasound synergistic with the released copper and iron ions stimulate the expression of angiogenic and osteogenic genes, promoting bone regeneration. The ultrasound-triggered catalytic reaction by CFO@MoS disrupts bacterial homeostasis, accelerates bacterial death, and offers a novel therapeutic strategy for osteomyelitis.

摘要

骨髓炎是一种严重且持续的骨感染,给临床治疗带来重大挑战,通常需要长期的抗生素治疗和侵入性手术。基于纳米材料的非抗生素疗法已成为对抗细菌感染的有前景的替代方法。然而,在有效治疗骨髓炎的同时促进骨修复仍然是一项挑战。在此,我们开发了一种由铜铁氧体(CuFeO)和二硫化钼(MoS)量子点组成的纳米异质结催化反应器(CFO@MoS),利用超声催化结合铜离子诱导细菌发生类铜死亡。理论计算表明,异质结界面的建立可以加速氧吸附,诱导电子流向界面处的氧原子,从而增强界面电子 - 空穴对的分离。此外,从CFO@MoS释放的铜离子在超声作用下发生价态变化,激活芬顿反应并释放活性氧以杀死细菌。基因测序表明,CFO@MoS在超声激活后,会破坏细菌能量合成,干扰细菌代谢,并诱导与铜相关的细菌死亡。更重要的是,超声与释放的铜和铁离子协同产生的微电流刺激血管生成和成骨基因的表达,促进骨再生。CFO@MoS引发的超声催化反应破坏细菌内环境稳定,加速细菌死亡,并为骨髓炎提供了一种新的治疗策略。

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