State-key Laboratory for Mechanical Behavior of Materials, Xi'an Jiaotong University, Xi'an, 710049, China.
State Key Laboratory of Military Stomatology & National Clinical Research Center for Oral Diseases & Shaanxi Clinical Research Center for Oral Diseases, Department of Oral and Maxillofacial Surgery, School of Stomatology, The Fourth Military Medical University, Xi'an, 710032, China.
Adv Healthc Mater. 2022 Nov;11(22):e2200998. doi: 10.1002/adhm.202200998. Epub 2022 Sep 15.
Bone defects are seriously threatening the health of orthopedics patients and it is difficult for implants to accelerate bone regeneration without using bone growth factors. Herein, a fast photothermal ion therapeutic strategy is developed based on the bandgap engineering of nanostructured TiO through (Si/P)-dual elemental doping by micro-arc oxidation treatment of titanium implants. The (Si/P)-dual doping can tune the surface bandgap structure of TiO by decreasing bandgap and broadening valence band simultaneously, which is confirmed by density functional theory calculations. It not only endows the implants with a mildly photothermal effect under near-infrared (NIR) light irradiation, but also creates an (Si/P) ion-rich microenvironment around the implants. This photothermal ion microenvironment can tune the behaviors of osteoblasts by promoting p38/Smad and ERK signaling pathways of osteoblasts, thus significantly upregulating the expression of osteogenesis genes by the synergistic action of mild photothermal stimulation and increased release of Si/P ions. The in vivo results are also in good agreement with in vitro tests, i.e., under NIR light irradiation, the photothermally responsive TiO enhances the bone formation and osteointegration with implants. Therefore, this kind of photothermal ion strategy is a promising remote and noninvasive therapeutic mode for promoting bone regeneration of Ti implants.
骨缺损严重威胁着骨科患者的健康,植入物如果不使用骨生长因子,很难加速骨再生。在此,通过钛植入物的微弧氧化处理对纳米结构 TiO 进行(Si/P)双元素掺杂,实现能带工程,开发了一种快速光热离子治疗策略。(Si/P)双掺杂可以通过同时降低带隙和展宽价带来调整 TiO 的表面能带结构,这通过密度泛函理论计算得到了证实。它不仅使植入物在近红外(NIR)光照射下具有温和的光热效应,而且在植入物周围形成了一个(Si/P)离子丰富的微环境。这种光热离子微环境可以通过促进成骨细胞的 p38/Smad 和 ERK 信号通路来调节成骨细胞的行为,从而通过温和的光热刺激和增加 Si/P 离子释放的协同作用,显著上调成骨基因的表达。体内结果也与体外测试结果一致,即在近红外光照射下,光热响应性 TiO 通过增强成骨细胞和植入物的骨形成和骨整合作用。因此,这种光热离子策略是一种很有前途的远程非侵入性治疗方式,可以促进 Ti 植入物的骨再生。