首页> 外文期刊>Journal of Materials Chemistry, B. materials for biology and medicine >3D robocasting magnesium-doped wollastonite/TCP bioceramic scaffolds with improved bone regeneration capacity in critical sized calvarial defects
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3D robocasting magnesium-doped wollastonite/TCP bioceramic scaffolds with improved bone regeneration capacity in critical sized calvarial defects

机译:3D Robocasting镁掺杂的硅灰石/ TCP生物陶瓷支架,具有改善的骨再生能力在临界大小的颅骨缺陷中

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摘要

Using artificial biomaterials in bone regenerative medicine for highly efficient osteoconduction into the bone defect to decrease the bone healing time is still a challenge. In this research, magnesium (Mg)-doped wollastonite (similar to 10% Mg was substituted for calcium (Ca) in beta-CaSiO3) (CSi-Mg10) bioceramic scaffolds with ultrahigh mechanical strength were fabricated using ceramic ink writing three dimensional (3D) printing. To evaluate the potential of other additives on the new bone regeneration efficiency, beta-tricalcium phosphate (beta-TCP) was introduced to the CSi-Mg10 ceramic ink at a concentration of 15% and the biphasic bioceramic scaffolds (CSi-Mg10/TCP15) were also fabricated using 3D printing. The mechanical characterization indicated that introduction of beta-TCP led to nearly 50% mechanical decay, although the effect of the two heating schedules (one- and two-step sintering) on the compressive and flexural strengths of the scaffolds was significantly different. The bone regeneration results in critical sized calvarial defect of rabbits showed that the CSi-Mg10/TCP15 scaffolds displayed a markedly higher osteogenic capability than those on the CSi-Mg10 and beta-TCP scaffolds after eight weeks, and reached similar to 35% new bone tissue regeneration at 12 weeks postoperatively. These findings demonstrate that the CSi-Mg10/TCP15 bioceramic scaffolds can be well suited for stimulating in situ bone regeneration and for use in tissue engineering applications.
机译:在骨再生医学中使用人工生物材料进行高效骨干切换到骨缺损以降低骨愈合时间仍然是一个挑战。在该研究中,使用陶瓷墨水书写三维制造镁(类似于10%Mg)(类似于10%Mg)(CSI-Mg10)(CSI-MG10)的β-CasiO3中的钙(CA)取代(CA))(CSI-MG10)的生物陶瓷支架(3D ) 印刷。为了评估其他添加剂对新的骨再生效率的潜力,将磷酸钙(β-TCP)以15%的浓度和双相生物陶瓷支架(CSI-MG10 / TCP15)引入CSI-Mg10陶瓷油墨中也使用3D打印制造。机械表征表明,β-TCP引入导致近50%的机械衰减,尽管两个加热时间表(一次和两步烧结)对支架的压缩和弯曲强度的影响显着不同。骨再生导致兔的临界大小颅缺损表明,CSI-MG10 / TCP15支架显示出比八周后的CSI-MG10和β-TCP支架上的显着较高的成骨能力,并且达到35%的新骨骼术后12周的组织再生。这些发现表明,CSI-MG10 / TCP15生物陶瓷支架非常适合于刺激原位骨再生并用于组织工程应用。

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    Zhejiang Univ Sch Mech Engn State Key Lab Fluid Power &

    Mechatron Syst Hangzhou 310027 Zhejiang Peoples R China;

    Zhejiang Univ Sch Med Affiliated Hosp 2 Dept Orthopaed Surg Hangzhou 310009 Zhejiang Peoples R China;

    Wenzhou Med Coll Ruian Peoples Hosp Ruian 325200 Peoples R China;

    Zhejiang Univ Sch Med Dept Oral &

    Maxillofacial Surg Stomatol Hosp Hangzhou 310006 Zhejiang Peoples R China;

    Zhejiang Univ Sch Mech Engn State Key Lab Fluid Power &

    Mechatron Syst Hangzhou 310027 Zhejiang Peoples R China;

    Zhejiang Univ Zhejiang Calif Int Nanosyst Inst Bionanomat &

    Regenerat Med Res Div Hangzhou 310058 Zhejiang Peoples R China;

    Zhejiang Univ Sch Mech Engn State Key Lab Fluid Power &

    Mechatron Syst Hangzhou 310027 Zhejiang Peoples R China;

    Wenzhou Med Coll Ruian Peoples Hosp Ruian 325200 Peoples R China;

    Wenzhou Med Coll Ruian Peoples Hosp Ruian 325200 Peoples R China;

    Zhejiang Univ Sch Med Affiliated Hosp 2 Dept Oral &

    Maxillofacial Surg Hangzhou 310009 Zhejiang Peoples R China;

    Zhejiang Univ Sch Med Dept Orthopaed Surg Affiliated Hosp 1 Hangzhou 310003 Zhejiang Peoples R China;

    Zhejiang Univ Zhejiang Calif Int Nanosyst Inst Bionanomat &

    Regenerat Med Res Div Hangzhou 310058 Zhejiang Peoples R China;

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  • 正文语种 eng
  • 中图分类 分析化学;
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