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光热催化还原与骨组织工程:用于骨肉瘤三合一治疗策略的研究

Photothermal Catalytic Reduction and Bone Tissue Engineering Towards a Three-in-One Therapy Strategy for Osteosarcoma.

机构信息

Department of Orthopaedics, Shanghai Tenth People's Hospital, School of Medicine, Tongji University, Shanghai, 200072, P. R. China.

Department of Bone Tumor Surgery, Shanghai General Hospital, Shanghai Jiaotong University, School of Medicine, Shanghai, 200025, P. R. China.

出版信息

Adv Mater. 2024 Oct;36(40):e2408016. doi: 10.1002/adma.202408016. Epub 2024 Aug 20.

Abstract

Osteosarcoma is one of the most dreadful bone neoplasms in young people, necessitating the development of innovative therapies that can effectively eliminate tumors while minimizing damage to limb function. An ideal therapeutic strategy should possess three essential capabilities: antitumor effects, tissue-protective properties, and the ability to enhance osteogenesis. In this study, self-assembled Ce-substituted molybdenum blue (CMB) nanowheel crystals are synthesized and loaded onto 3D-printed bioactive glass (CMB@BG) scaffolds to develop a unique three-in-one treatment approach for osteosarcoma. The CMB@BG scaffolds exhibit outstanding photothermally derived tumor ablation within the near-infrared-II window due to the surface plasmon resonance properties of the CMB nanowheel crystals. Furthermore, the photothermally synergistic catalytic effect of CMB promotes the rapid scavenging of reactive oxygen species caused by excessive heat, thereby suppressing inflammation and protecting surrounding tissues. The CMB@BG scaffolds possess pro-proliferation and pro-differentiation capabilities that efficiently accelerate bone regeneration within bone defects. Altogether, the CMB@BG scaffolds that combine highly efficient tumor ablation, tissue protection based on anti-inflammatory mechanisms, and enhanced osteogenic ability are likely to be a point-to-point solution for the comprehensive therapeutic needs of osteosarcoma.

摘要

骨肉瘤是年轻人中最可怕的骨肿瘤之一,需要开发创新的治疗方法,能够有效地消除肿瘤,同时最大限度地减少对肢体功能的损害。理想的治疗策略应具有三个基本能力:抗肿瘤作用、组织保护特性和促进成骨作用。在本研究中,合成了自组装的 Ce 取代的钼蓝(CMB)纳米轮晶体,并将其负载到 3D 打印的生物活性玻璃(CMB@BG)支架上,开发出一种独特的骨肉瘤三合一治疗方法。由于 CMB 纳米轮晶体的表面等离子体共振特性,CMB@BG 支架在近红外-II 窗口内表现出出色的光热衍生肿瘤消融性能。此外,CMB 的光热协同催化作用促进了过量热量引起的活性氧的快速清除,从而抑制炎症并保护周围组织。CMB@BG 支架具有促进增殖和分化的能力,可有效加速骨缺损内的骨再生。总之,CMB@BG 支架结合了高效的肿瘤消融、基于抗炎机制的组织保护和增强的成骨能力,可能是骨肉瘤全面治疗需求的点对点解决方案。

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