期刊文献+

RGD多肽在骨组织工程中的研究与应用进展 被引量:3

Advance in research and application of RGD polypeptide in bone tissue engineering
下载PDF
导出
摘要 精氨酸-甘氨酸-天冬氨酸(Arg-Gly-Asp,RGD)多肽是细胞膜整合素受体与细胞外配体相结合的识别位点,利用其对材料进行表面修饰可提高人工骨材料的生物相容性。文章就RGD的生物学效应、影响RGD生物学效应的因素、RGD在骨组织工程中的应用进行综述,并提出存在的问题。
出处 《生物医学工程与临床》 CAS 2008年第2期163-166,F0003,共5页 Biomedical Engineering and Clinical Medicine
  • 相关文献

参考文献28

  • 1Elbert DL, Hubbell JA. Conjugate addition reactions combined with Free-radical cross-linking for the design of materials for tissue engineering[J]. Biomacromolecules,2001,2 (2) :430- 441.
  • 2Hersel U, Dahmen C, Kessler H. RGD modified polymers: biomaterials for stimulated cell adhesion and beyond[J]. Biomaterials ,2003,24(24) :4385-4415.
  • 3Pierschbacher MD ,Ruoslahti E. Cell attachment activity of fibronectin can be duplicated by small synthetic fragments of the molecule[J]. Nature, 1984,309(5963) : 30-33.
  • 4Anselme K. Osteoblast adhesion on biomaterials [J]. Biomaterials,2000,21(7):667-681.
  • 5Janssens K,ten Dijke P,Janssens S,et al. Transforming growth factor-betal to the bone[J]. Endocr Rev,2005,26(6):743- 774.
  • 6Susan J, McCarthy A, Kaplan L, et al. Functionalized silk protein biomaterials for bone regeneration [C]. Sixth World Biomaterials Congress Transactions. Hawaii, USA, 2000.1206.
  • 7Faccio R,Novack DV,Zallone A,et al. Dynamic changes in the osteoclast cytoskeleton in response to growth factors and cell attachment are controlled by beta3 integrin [J]. J Cell Biol,2003, 162(3) :499-509.
  • 8Kawai H, Shibata Y, Miyazaki T. Glow discharge plasma pretreatment enhances osteoclast differentiation and survival on titanium plates[J]. Biomaterials, 2004,25 (10) : 1805-1811.
  • 9Rammelt S, Illert T, Bierbaum S,et al. Coating of titanium implants with collagen,RGD peptide and chondroitin sulfate[J]. Biomaterials, 2006,27 (32) : 5561-5571.
  • 10Verrier S,Pallu S,Bareille R,et al. Function of linear and cyclic RGD-containing peptides in osteoprogenitor cell adhesion process[]]. Biomaterials,2002,23 ( 2 ) : 585-596.

二级参考文献61

  • 1余贯华,计剑,王东安,沈家骢.RGD改性聚醚氨酯及其内皮细胞相容性的研究[J].高等学校化学学报,2005,26(6):1156-1161. 被引量:6
  • 2孔航,章燕,蒋欣泉,潘可风.兔骨髓基质细胞的体外成骨定向诱导培养[J].口腔颌面外科杂志,2006,16(1):11-15. 被引量:7
  • 3Yang XB,Roach HI,Clarke NMP,et al.Human osteoprogenitor growth and differentiation on synthetic biodegradable structures after surface modification[J].Bone,2001,29:523-531.
  • 4Shin H,Zygourakis K,Farach-Carson MC,et al.Modulation of differentiation and mineralization of marrow stromal cells cultured on biomimetic hydrogels modified with Arg-Gly-Asp containing peptides[J].J Biomed Mater Res,2004,69A:535 -543.
  • 5Sakiyama-Elbert SE,Hubbell JA.Functional biomaterials:design of novel biomaterials[J].Annu Rev Mater Res,2001,31:183-201.
  • 6Lebaron RG,Athanasiou KA.Extracellular matrix cell adhesion peptides:functional applications in orthopedic materials[J].Tissue Eng,2000,6:85-103.
  • 7Dee KC,Andersen TT,Bizios R.Osteoblast population migration characteristics on substrates modified with immobilized adhesive peptides[J].Biomaterials,1999,20:221-227.
  • 8Rezania A,Healy KE.Biomimetic peptide surfaces that regulate adhesion,spreading,cytoskeletal organization,and mineralization of the matrix deposited by osteoblast-like cells[J].Biotechnol Prog,1999,15:19-32.
  • 9Shin H,Zygourakis K,Farach-Carson MC,et al.Attachment,proliferation,and migration of marrow stromal osteoblasts cultured on biomimetic hydrogels modified with an osteopontin-derived peptide[J].Biomaterial,2004,25:895-906.
  • 10Hu Y,Winn SR,Krajbich I,et al.Porous polymer scaffolds surface-modified with arginine-glycine-aspartic acid enhance bone cell attachment and differentiation in vitro[J].J Biomed Mater Res,2003,64A:583-590.

共引文献27

同被引文献21

  • 1杨国利,赵士芳.RGD序列与种植体骨整合[J].国际口腔医学杂志,2007,34(3):210-212. 被引量:4
  • 2Guo I.i Yang, Fu--Ming He, Xiao--Feng Yang, et al. In Vivo evaluation of bone--bonding ability of RGD coated porous implant using layer--by--layer electrostatic self--as sembly [J]. Biomed Mater Res A, 2009, 90(1) : 175-85.
  • 3Hersel U, Dahmen C, Kessler H. RGD modified polymers: biomaterials for stimulated cell adhesion and beyond [J]. Biomaterials, 2003, 24(24) : 4385-415.
  • 4Erin E. Leary Swan1, Ketul C. Popatl, Tejal A. Desai. Peptide--immobilized nanoporous alumina membranes for enhanced osteoblast adhesion [J]. Biomaterials 26, 2005, 1969-1976.
  • 5Gong D, Grimes CA, Varghese OK, et al. Titanium oxide nanotubes arrays prepared by anodic oxidation [J]. Mater Res, 2001, 16 : 3331-3334.
  • 6Yao C, Slamovich EB, Webster TJ. Enhanced osteoblast functions on anodized titanium with nanotube like struc- tures [J]. Biomed Mater Res A, 2008, 85(1):157 -166.
  • 7Brammer KS, Oh S, Cobb CJ, et al. Improved bone--form ing functionality on diameter controlled TiO (2) nanotube surface[J]. Acta Biomater, 2009, 5(8) : 3215-23.
  • 8Mendona G, Mendona DB, Arago FJ, et al. Advancing dent- al implant surface technology from micron to nanotopography [J]. Biomaterials, 2008, 29(28) : 3822-35.
  • 9Rezania A, Healy KE. The efect of peptide surface density on minerali zation of matrix deposited by osteogenic cells [J]. Biomed Mater Res, 2000, 52(4) : 595-600.
  • 10于卫强,张富强,蒋欣泉.种植体表面纳米改性的研究进展[J].国际口腔医学杂志,2008,35(6):665-668. 被引量:3

引证文献3

二级引证文献3

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