To mitigate the necessity for multiple invasive procedures in treating malignant osteosarcoma, an innovative therapeutic approach is imperative to achieve controllable tumor-killing effects and subsequent bone repair. Here, we propose the de novo design of sono-activable and biocatalytic nanoparticles-modified 3D-printed hydroxyapatite (HA) scaffold (HS-ICTO) for intelligently sequential therapies in osteosarcoma eradication and bone defect regeneration. The engineered HS-ICTO scaffold displays superior, spatiotemporally controllable H(2)O(2)-catalytic performances, which promptly generate massive reactive oxygen species via multienzyme-like mechanisms coupled with sono-activation, thus augmenting tumor cell apoptosis. Furthermore, HS-ICTO can intelligently switch to catalyze H(2)O(2) to O(2) within the inflammatory bone defect microenvironment, effectively blocking endogenous H(2)O(2)-mediated oxidative stress, which positively modulates the osteogenic differentiation of stem cells and ultimately facilitates defect regeneration. We validate that this multifaceted HS-ICTO scaffold possesses robust and on-demand abilities to prevent neoplastic recurrence and promote anti-inflammatory osseous tissue repair, representing a promising platform for precision oncological intervention and regenerative medicine.
Sono-activable and biocatalytic 3D-printed scaffolds for intelligently sequential therapies in osteosarcoma eradication and defect regeneration.
用于骨肉瘤根除和缺损修复的智能序贯疗法的声激活和生物催化 3D 打印支架
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作者:Rong Xiao, Xiao Sutong, Geng Wei, Zhu Bihui, Mou Ping, Ding Zichuan, Zhang Boqing, Fan Yujiang, Qiu Li, Cheng Chong
| 期刊: | Nature Communications | 影响因子: | 15.700 |
| 时间: | 2025 | 起止号: | 2025 Jul 4; 16(1):6150 |
| doi: | 10.1038/s41467-025-61377-x | 研究方向: | 肿瘤 |
| 疾病类型: | 骨肉瘤 | ||
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