期刊文献+

NaCl添加量对SF/HA复合多孔材料结构和性能的影响 被引量:3

Effects of Addition Amount of NaCl Porogen on the Structure and Properties of the Porous Silk Fibroin (SF)/Hydroxyapatite (HA) Composites
在线阅读 下载PDF
导出
摘要 摘要:采用等静压成型法制备丝素SF/羟基磷灰石HA复合多孔材料,通过对材料形态结构、密度、孔隙率、透气性及抗弯、抗压性能等的测试和分析,研究了致孔剂NaCl添加量对SF/HA复合多孔材料结构和性能的影响。结果表明,以NaCl为致孔剂能够制得SF/HA复合多孔材料,致孔效果明显,孔呈三维空间结构,当NaCl添加量达到400%~550%后,材料内孔与孔之间连通性有较显著的改善。SF/HA复合多孔材料的孔结构有利于养料和代谢物的运输交换,为细胞提供良好的生长环境,便于骨组织的长入,其生物降解性有利于骨组织的改建和塑形,具有良好的,临床应用前景。 In this paper, we aimed to investigate the effects on the structure and properties of the porous silk fibroin (SF)/hydroxyapatite (HA) composites with the addition amount of NaCl particles as porogen. Here,the SF/HA composites were fabricated by means of isostatic pressing and evaluated for their morphology, average pore size, porosity,MIP,air permeability and mechanical testing. These results showed that NaCl particles porogen used for porous SF/HA composites was available, the pores obtained were 'obvious and presented three-dimensional structure, when the addition of NaCl reached 400% ~550% ,the pore connectivity of the material improved significantly. The porous SF/HA composites were benefit for the cell growth environment and bone tissue regeneration. Its biodegradability were benefit for bone remodeling and renovation, and it may be a potential composites for clinical application in bone tissue repair.
出处 《苏州大学学报(工科版)》 CAS 2009年第4期1-4,共4页 Journal of Soochow University Engineering Science Edition (Bimonthly)
基金 国家973计划课题(编号2005CB623902) 江苏省高校自然科学重大基础研究项目(编号07KJA43010)
关键词 丝素蛋白 羟基磷灰石 复合材料 NACL 孔结构 骨修复 silk fibroin hydroxyapatite composites NaC1 pore structure bone repaire
  • 相关文献

参考文献10

  • 1张阳德,乐园,赵梓屹.羟基磷灰石骨修复材料[J].中国现代医学杂志,2006,16(1):72-75. 被引量:16
  • 2Huipin Yuan, Yubao Li. Tissue Response of Calcium Phosphate Cement :a study in dogs[ J]. Biomaterials,2000,21 (12) :1 283 - 1 290.
  • 3Marsh R E, Corey R B, Pauling L. Crystal structure of silk fibroin [ J ]. Biochemica Biophysica Acta, 1955,16 : 1 - 86.
  • 4Jun G. Osteogenic Potential of Culture-expanded Rat Marrow Cells as Assayed in Vivo with Porous Calcium Phosphate Ceramic [ J ]. Biomaterials, 1991,12(2) :253 -258.
  • 5Morita Y, Tomita N, Aoki H, et al. Visco-elastic properties of cartilage tissue regenerated with fibroin sponge[ J ]. Biomed Mater Eng,2002,12 (3) :291 - 298.
  • 6Lirabayashi K I,Ishikava H. Studies On the fine strtlcture of silk fibroin[ J]. Sen-i Cakkaishi,1967,23(2) :289 -295.
  • 7刘培生.多孔材料孔径及孔径分布的测定方法[J].钛工业进展,2006,23(2):29-34. 被引量:47
  • 8Wang Y, Kim U J, Blasioli D J, et al. In vitrocartilage tissue engineering with 3D porous aqueous-derived silk scaffolds and mesenchymal stem cells [J].Biomaterials ,2005,26 ( 34 ) :7 082 - 7 094.
  • 9Dennis J E, Haynesworth S E, Young R G, et al. Osteogenesis in marrow-derived mesenehymal cell porous ceramic composites transplanted subcutane- ously:effect of fibroneetin and laminin on cell retention and rate of osteogenic expression[ J ]. Cell Transplant, 1992,1 (1) :23 -32.
  • 10Gibson L J. The mechanical behaviour of cancellous bone[ J]. Journal of Biomeehanics, 1985,18 (5) :317 - 328.

二级参考文献19

共引文献61

同被引文献34

  • 1李旭升,胡蕴玉,范红斌,白建萍,吕荣,腾勇,王军.新型快速成形的三维多孔支架材料构建组织工程软骨[J].第四军医大学学报,2005,26(11):978-982. 被引量:3
  • 2Steadman JR, Briggs KK, Rodrigo J J, et al. Outcomes of microfracture for traumatic chondral defects of the knee: average 11-year follow-up. Arthroscopy. 2003;19(5):477-484.
  • 3Gudas R, Stankevicius E, Monastyreckiene E, et al. Osteochondral autologous transplantation versus microfracture for the treatment of articular cartilage defects in the knee joint in athletes. Knee Surg Sports Traumatol Arthrosc. 2006;14(9): 834-842.
  • 4Wambach BA, Cheung H, Josephson GD. Cartilage tissue engineering using thyroid chondrocytes on a type I collagen matrix. Laryngoscope. 2000;110(12):2008-2011.
  • 5van Susante JLC, Pieper J, Buma P, et al. Linkage of chondroitin-sulfate to type I collagen scaffolds stimulates the bioactivity of seeded chondrocytes in vitro. Biomaterials. 2001 ; 22(17):2359-2369.
  • 6Willers C, Chen J, Wood D, et al. Autologous chondrocyte implantation with collagen bioscaffold for the treatment of osteochondral defects in rabbits. Tissue Eng. 2005; 11 (7-8): 1065-1076.
  • 7Meinel L, Fajardo R, Hofmann S, et al. Silk implants for the healing of critical size bone defects. Bone. 2005;37(5):688-698.
  • 8Chiarirli A, Petrini P, Bozzini S, et al. Silk fibroin/poly(carbonate)-urethane as a substrate for cell growth: in vitro interactions with human cells. Biomaterials. 2003;24(5): 789-799.
  • 9Petrini P, Parolari C, Tanzi MC. Silk fibroin-polyurethane scaffolds for tissue engineering. J Mater Sci Mater Med, 2001;12(10-12): 849-853.
  • 10Kweon HY, Um IC, Park YH. Structural and thermal characteristics of Antheraea pernyi silk fibroin/chitosan blend film. Polymer. 2001 ;42:6651-6656.

引证文献3

二级引证文献2

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