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The synergistic effects of Sr and Si bioactive ions on osteogenesis, osteoclastogenesis and angiogenesis for osteoporotic bone regeneration

机译:Sr和Si生物活性离子对骨质疏松骨再生骨质发生,骨质细胞发生和血管生成的协同作用

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Graphical abstract Display Omitted Abstract Bioactive ions released from bioceramics play important roles in bone regeneration; however, it is unclear how each ionic composition in complex bioceramics exerts its specific effect on bone regeneration. The aim of this study is to elucidate the functional effects of Sr and Si ions in bioceramics on the regeneration of osteoporotic bone. A model bioceramic with Sr- and Si-containing components (SMS) was successfully fabricated and the effects of ionic products from SMS bioceramics on the osteogenic, osteoclastic and angiogenic differentiation of rBMSCs-OVX and RANKL-induced osteoclasts were investigated. The results showed that SMS bioceramics could enhance ALP activity and expression of Col 1 , OCN , Runx2 , and angiogenic factors including VEGF and Ang-1 . SMS bioceramics not only rebalanced the OPG / RANKL ratio of rBMSCs-OVX at early stage, but also repressed RANKL-induced osteoclast formation and expression of TRAP , DC-STAMP , V-ATPase a3 , and NFATc1 . The synergistic effects of Sr and Si ions were further investigated as compared with those of similar concentrations of Sr and Si ions alone. Sr and Si ions possessed synergistic effects on osteogenesis, osteoclastogenesis, and angiogenesis, attributed to the dominant effects of Sr ions on enhancing angiogenesis and repressing osteoclastogenesis, and the dominant effects of Si ions on stimulating osteogenesis. The in vivo study using critical-size mandibular defects of OVX rat models showed that SMS bioceramics could significantly enhance bone formation and mineralization compared with β-TCP bioceramics. Our results are the first to elucidate the specific effect of each ion from bioceramics on osteogenesis, osteoclastogenesis and angiogenesis for osteoporotic bone regeneration, paving the way for the design of functional biomaterials with complex compositions for tissue engineering and regenerative medicine. Statement of significance Bioactive ions released from bioceramics play important roles for bone regeneration; however, it is unclear how each of ionic compositions in complex bioceramics exerts its specific effect on bone regeneration. The aim of present study is to elucidate the functional effects of Sr and Si ions in complex bioceramics on the regeneration of osteoporotic bone. A model bioceramic with Sr and Si-containing components (SMS) was successfully fabricated and the effects of ionic products from SMS bioceramics on the osteogenic, osteoclastic and angiogenic differentiation of rBMSCs-OVX and RANKL-induced osteoclasts were investigated. The results showed that SMS bioceramics could enhance ALP activity and expression of Col 1, OCN, Runx2 and angiogenic factors including VEGF and Ang-1. SMS bioceramics not only rebalanced the ratio of OPG/RANKL of OVX-BMSCs at early stage, but also repressed RANKL-induced osteoclast formation and expression of TRAP, DC-STAMP, V-ATPase a3, and NFATc1. The synergistic effects of Sr and Si ions were further investigated as compared with the similar concentration of Sr and Si ions alone. It was found that Sr and Si ions possessed synergistic effects on osteogenesis, osteoclastogenesis and angiogenesis, attributed to the dominant effects of Sr ions on enhancing angiogenesis and repressing osteoclastogenesis, and the dominant effects of Si ions on stimulating osteogenesis. The in vivo study using critical-size mandibular defects of OVX rat models showed that SMS bioceramics could significantly enhance bone formation and mineralization as compared with β-TCP bioceramics. It is suggested that SMS bioceramics may be a promising biomaterial for osteoporotic bone regeneration. To our knowledge, this is the first time to elucidate the specific effect of each ion from bioceramics on osteogenesis, osteoclastogenesis and angiogenesis for osteoporotic bone regeneration, paving the way to design functional biomaterials with complex compositions for tissue engineering and regenerative medicine.
机译:从生物陶瓷中释放的图形抽象显示省略了抽象的生物活性离子在骨再生中起重要作用;然而,目前尚不清楚复杂生物陶瓷中的每个离子组合物如何施加其对骨再生的具体作用。本研究的目的是阐明SR和Si离子在生物陶瓷中对骨质疏松骨再生的功能影响。已经成功制造了一种具有Si和Si的组分(SMS)的模型生物陶瓷,并研究了来自SMS生物陶瓷对RBMSCS-OVX和RANKL诱导的破骨细胞的成骨,破坏性和血管生成分化的离子产物的影响。结果表明,SMS生物陶瓷可以增强ALP活性和COL 1,OCN,RUNX2和血管生成因子的表达,包括VEGF和ANG-1。 SMS生物陶瓷不仅重新平衡RBMSCS-OVX的OPG / RANKL比在早期阶段,而且还抑制了RANKL诱导的疏口骨蛋白形成和表达捕集器,DC印花,V-ATP酶A3和NFATC1。与单独的Sr和Si离子的那些相比,进一步研究了Sr和Si离子的协同效应。 Sr和Si离子具有对骨肉骨质发生,骨质细胞发生和血管生成的协同作用,归因于SR离子对增强血管生成和抑制骨质细胞发生的显性效果,以及Si离子对刺激骨质发生的显性效应。使用OVX大鼠模型的临界尺寸下颌缺陷的体内研究表明,与β-TCP生物陶瓷相比,SMS生物陶瓷可显着增强骨形成和矿化。我们的研究结果是首先阐明每种离子从生物陶瓷对骨质发生,骨质细胞发生和血管生成的特异性效果,为骨质疏松骨再生的血管生成,为组织工程和再生医学复杂组合物设计功能生物材料的设计。生物陶瓷中释放的意义生物活性离子陈述对骨再生起重要作用;然而,目前尚不清楚复合生物陶瓷中的每种离子组合物在其对骨再生施加的特定作用。目前研究的目的是阐明综合生物陶瓷中Sr和Si离子对骨质疏松骨再生的功能影响。已经成功制造了一种具有Sr和含Si的组分(SMS)的模型生物陶瓷,并研究了来自SMS生物陶瓷对RBMSCS-OVX和RANKL诱导的破骨细胞的骨质发生,骨骼细胞和血管生成分化的离子产品的影响。结果表明,SMS生物陶瓷可以增强ALP活性和COL 1,OCN,RUNX2和血管生成因子的表达,包括VEGF和Ang-1。 SMS生物陶瓷不仅重新平衡OPG / RANKL的ovX-BMSCs在早期阶段的比例,而且还抑制了RANKL诱导的骨骨细胞形成和捕集器,DC印花,V-ATP酶A3和NFATC1的表达。与单独的Sr和Si离子相比,进一步研究了Sr和Si离子的协同效应。发现SR和Si离子对骨发生,骨质细胞发生和血管生成具有协同作用,其归因于SR离子对增强血管生成和抑制骨质细胞发生的显性效果,以及Si离子对刺激骨质发生的显性效应。使用OVX大鼠模型的临界尺寸下颌缺陷的体内研究表明,与β-TCP生物陶瓷相比,SMS生物陶瓷可显着提高骨形成和矿化。建议SMS生物陶瓷可能是骨质疏松骨再生的有希望的生物材料。据我们所知,这是第一次阐明从生物陶瓷对骨质发生,骨质细胞发生和骨质骨再生血管生成的每种离子的具体效果,铺平了与组织工程和再生药物复杂组合物设计功能生物材料的方式。

著录项

  • 来源
    《Acta biomaterialia》 |2017年第2017期|共16页
  • 作者单位

    Center of Craniofacial Orthodontics Department of Oral and Cranio-maxillofacial Science Ninth;

    Center of Craniofacial Orthodontics Department of Oral and Cranio-maxillofacial Science Ninth;

    State Key Laboratory of High Performance Ceramics and Superfine Microstructure Shanghai Institute;

    Center of Craniofacial Orthodontics Department of Oral and Cranio-maxillofacial Science Ninth;

    Center of Craniofacial Orthodontics Department of Oral and Cranio-maxillofacial Science Ninth;

    State Key Laboratory of High Performance Ceramics and Superfine Microstructure Shanghai Institute;

    Center of Craniofacial Orthodontics Department of Oral and Cranio-maxillofacial Science Ninth;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 普通生物学;
  • 关键词

    Bioceramics; Bioactive ions; Osteoporotic bone; Osteogenesis; Osteoclastogenesis; Angiogenesis;

    机译:生物陶瓷;生物活性离子;骨质疏松骨;骨质发生;骨质细胞发生;血管生成;

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