期刊文献+

β-磷酸三钙/α-半水硫酸钙复合人工骨体外降解速度可与成骨一致 被引量:5

In vitro degradation mechanism of beta-tricalcium phosphate/alpha-calcium sulfate hemihydrates bone graft
暂未订购
导出
摘要 背景:骨修复材料的理想降解速度应该与新骨形成速度相匹配,逐渐被新生骨逐渐爬行替代。目的:探讨β-磷酸三钙/α-半水硫酸钙复合人工骨的体外降解速度。方法:将β-磷酸三钙/α-半水硫酸钙复合人工骨、β-磷酸三钙、α-半水硫酸钙试件置于PBS模拟体液中,测量不同浸泡时间的pH变化、试件降解率和压缩强度变化。结果与结论:在模拟体液中复合人工骨和α-半水硫酸钙的pH值随时间延长逐渐降低,而β-磷酸三钙的pH值变化不大,4周后复合人工骨的pH值稳定在5.6左右。PBS模拟体液浸泡过程中,复合人工骨与α-半水硫酸钙的质量和压缩强度均随时间延长而不断降低,而β-磷酸三钙的质量随时间的变化降低较小。说明β-磷酸三钙/α-半水硫酸钙复合人工骨通过物理溶解而逐渐降解,其体外降解率介于β-磷酸三钙和α-半水硫酸钙之间。 BACKGROUND: The ideal degradation rate of bone repair materials should be matched with the speed of new bone formation, and the bone repair materials are replaced by new bone gradually via creeping substitution. OBJECTIVE: To investigate the in vitro degradation mechanism and degradation speed of β-tricalcium phosphate/α-calcium sulphate hemihydrates (β-TCP/α-CSH) bone graft. METHODS: β-TCP/α-CSH, β-TCP and α-CSH samples were soaked in PBS liquid. The pH value, degradation rate and compressive stress were examined. RESULTS AND CONCLUSION: In the PBS liquid, the pH value of β-TCP/α-CSH bone graft and α-CSH gradually decreased with the soaked time, but that of β-TCP changed little. After 4 weeks, the pH value of β-TCP/α-CSH bone graft and α-CSH was stabilized to about 5.6. The weight and compressive stress of β-TCP/α-CSH bone graft and α-CSH were gradually decreased with the soaked time in the PBS liquid, but those of β-TCP decreased little. β-TCP/α-CSH bone graft can gradually degrade through physical dissolution in vitro, and the degradation rate is lower than that of β-TCP but higher than that of α-CSH.
出处 《中国组织工程研究与临床康复》 CAS CSCD 北大核心 2011年第51期9501-9504,共4页 Journal of Clinical Rehabilitative Tissue Engineering Research
基金 国家自然科学基金(50830102) 课题名称:仿生骨再生植入材料的相关科学问题研究 国家国家863计划(2009AA02Z405) 课题名称:微创手术治疗骨质疏松椎体压缩骨折相关研究~~
  • 相关文献

参考文献17

  • 1Keya M,Yang Y,Li JT,et al.Investigation of the histology and interfacial bonding between carbonated hydroxyapatite cement and bone.Biomed.Mater.2009,045003.
  • 2Rihn JA,Kirkpatrick K,Albert TJ.Graft options in posterolateral and posterior interbody lumbar fusion.Spine.2010;35(17):1629-1639.
  • 3Nilsson M,Fernandez E,et al.Characterization of a novel calcium phosphate/sulphate bone cement.J Biomed Mater Res.2002;61 (4):600-607.
  • 4Jin HB,Guo CB,Mao KY,et al.Preparation of porous biphasic TCP/HA bioceramics with a natural trabecular structure from calcined cancellous bovine bone.J Ceram Soc Jap.2010;118(1):52-56.
  • 5Bohner M.Resorbable Biomaterials as Bone Graft Substitutes.Materialstoday.2010;13:24-30.
  • 6Vaccaro AR,Madigan L.Spinal applications of biabsorbale implants.Orthopedics.2002;25:1115-1120.
  • 7Thomson RC,Yaszemski MJ,Powers JM,et al.Hydroxyapatite fiber reinforced poly (alpha-hydroxy ester) foams for bone regeneration.Biomaterials.1998;19:1935-1943.
  • 8温宁,毛克亚,王征,侯喜君,梁茂华,杜明奎,王继芳,李江涛,王岩.多孔β-磷酸三钙的制备与性能检测[J].口腔颌面修复学杂志,2009,10(1):1-4. 被引量:4
  • 9Siegel HJ,Baird RC 3rd,Hall J,et al.The outcome of composite bone graft substitute used to treat cavitary bone defects.Orthopedics.2008;31(8):754.
  • 10Brandoff JF,Silber JS,Vaccaro AR.Contemporary alternatives to synthetic bone grafts for spine surgery.Am J Orthop (Belle Mead NJ).2008;37(8):410-414.

二级参考文献24

  • 1毛克亚,郝立波,唐佩福,王继芳,王岩,卢世璧,卢世琳,贺大为.碳酸化羟基磷灰石水泥修复骨缺损的实验研究[J].生物医学工程与临床,2004,8(3):129-132. 被引量:17
  • 2郑启新,刘苏南.煅烧牛松质骨的制备、理化性能及生物相容性研究[J].生物医学工程学杂志,2005,22(1):95-98. 被引量:15
  • 3崔福斋 汪日志 等.94中国秋季材料研讨会:第三卷,第二分册[M].中国化工出版社,1995.537.
  • 4Mao KY, Hao LB, Tang PF, et al. Osteoblast MC3T3-E1 culture on a fast-setting carbonated hydroxyapatite bone-like material [J]. J Bioactive Compatible Polymers, 2005, 20(6): 541-555.
  • 5Robert F. Tissue engineers build new bone [J]. Science, 2000, 289:1498-1500.
  • 6VaUet-Regt M, Gonzalez-Calbet JM. Calcium phosphates as substitution of bone tissues [J]. Progress in Solid State Chemistry, 2004, 32:1-31.
  • 7Van Haaren EH, Smit TH, Phipps K, et al. Tricalcium- phosphate and hydroxyapatite bone-graft extender for use in impaction grafting revision surgery. An in vitro study on human femora[J]. J Bone Joint Surg Br, 2005, 87:267-271.
  • 8Lin FH, Liao C J, Chen KS, et al. Preparation of a biphasic porous bioceramic by heating bovine cancellous bone with Na4 P207·10H20 addition[J]. Biomaterials, 1999, 20 (3) : 475-484.
  • 9Lin FH, Liao C J, Chen KS, et al. Preparation of beta TCP/HAP biphasic ceramics with natural bone structure by eating bovine cancellous bone with the addition of (NH4)2HPO4 [J].J BiomedMater Rcs, 2000, 5(2): 157-163.
  • 10ComeU CN, Lane JM. Current understanding of osteoconduction in bone regeneration[J]. Clin Orthop, 1998, (355 suppl): 267-273.

共引文献36

同被引文献40

  • 1马兴,胡蕴玉,吴小明,颜永年,熊卓,吕荣,王军,李丹,徐新智.聚酯/磷酸三钙人工骨载体的表面修饰及不同骨移植材料的比较研究[J].生物医学工程学杂志,2008,25(3):571-577. 被引量:7
  • 2刘艺,顾国奎,刘克泉,王和鸣,石冬梅,张安桢.海螵蛸接骨动物实验的组织学研究[J].中国中医骨伤科,1995,3(5):6-8. 被引量:14
  • 3舒晓军,杨青芳,杜江华,张楠,王大伟.聚乳酸的改性及应用[J].合成纤维工业,2006,29(6):44-47. 被引量:12
  • 4李晓红,朱晓姝,赵献银,苏兴宇.荧光标记拔牙创口骨愈合过程中矿化沉积速度的研究[J].中国骨质疏松杂志,2007,13(7):486-489. 被引量:8
  • 5Bosch P, Musgrave D,Ghivizzani S,et aI.The efficiency of muscle-derived cell-mediated bone formation.Cell Transplant.2000;9(4):463-470.
  • 6Wong EW, Sheehan PE,Lieber CM. Nanobcammechanics elasticity, strength and toughness of nanorods and nanotubes. Science. 1997;277:1971-1975.
  • 7Puelacher WC, Wisser J, Vacanti CA, et al. Temporomandibular joint disc replacement made by tissue engineered growth of cartilage.J Oral Maxillofac Surg.2007;52(11):1172-1173.
  • 8Athanasiou KA, Niederauer GG, Agrawal CM,et al. Sterilization,toxicity, biocompatibility and clinical applications of polylactic acid/polyglycolic acid copolymers.Biomaterials.1996;17:93-94.
  • 9Ashiku SK, Randollsh MA,Vacanti CA,et al.Tissue Engineered cartilage.Mater Sci Forum. 1997;250: 129-130.
  • 10Berland S,Delattre 0,Borzeix S,et al.Nacre/bone interface changes in durable nacreendosseous implants in sheep. Biomaterials 2005;26(15):2767-2773.

引证文献5

二级引证文献7

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部