材料科学
钛酸钡
光热治疗
钛
生物医学工程
体内
钛合金
表面改性
脚手架
骨整合
纳米技术
医学
合金
外科
植入
化学工程
冶金
生物技术
陶瓷
工程类
生物
作者
Zhen Tang,Dongmei Yu,Shusen Bao,Chenyu Li,Hao Wu,Hui Dong,Ning Wang,Yichao Liu,Qi Wu,Changcheng Chen,Mo Wang,Pengfei Cao,Zenghui Zheng,Hai Huang,Xiaokang Li,Zheng Guo
标识
DOI:10.1002/adhm.202302901
摘要
Abstract Bone metastases severely threaten the lives of patients. Although surgical treatment combined with adjuvant chemotherapy significantly improves the survival rate of patients, tumor recurrence, or metastasis after surgical resection and bone defects caused by surgical treatment remain major challenges for clinicians. Given the abovementioned clinical requirements, barium titanate‐containing iron‐coated porous titanium alloy scaffolds have been proposed to promote bone defect repair and inhibit tumor recurrence. Fortunately, in vitro and in vivo experimental research confirms that barium titanate containing iron‐coated porous titanium alloy scaffolds promote osteogenesis and bone reconstruction in defect repair via mechanoelectric conversion and inhibit tumor recurrence via photothermal effects. Furthermore, the underlying and intricate mechanisms of bone defect repair and tumor recurrence prevention of barium titanate‐containing iron‐coated porous titanium alloy scaffolds are explored. A win‐win strategy for mechanoelectrical conversion and photothermal functionalization provides promising insights into bone reconstruction of tumor‐resected defects.
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