期刊文献+

反应时间对聚多巴胺/纳米银修饰多孔钛生物学性能的影响 被引量:2

The Influen ce of Reaction Time on the Biocompatibility of Polydopamine/Silver Nanoparticles Modified Porous Titanium
下载PDF
导出
摘要 目的探讨制备新型钛基材料过程中,纳米银颗粒载入反应时间对其体外抗菌性能和细胞相容性等生物学性能的影响。方法通过聚合作用以多巴胺在纳米孔钛表面构建聚多巴胺(PDA)膜层,通过调节纳米银颗粒载入反应时间(15 min,30 min,60 min),得到不同纳米银颗粒浓度的聚多巴胺修饰钛。利用扫描电镜(SEM)、细胞黏附、细胞毒性及杀菌率等检测方法,对载不同纳米银颗粒浓度的聚多巴胺修饰钛进行体外生物相容性及抗菌性能评价。结果载入纳米银反应时间为30 min的钛基材料较其他反应时间的材料表现出良好的细胞黏附能力、较低的细胞毒性和满意的抗菌性能。结论通过调整纳米银沉积反应时间,可调节材料表面银离子释放量,可得到既有良好细胞相容性,又有较强抗菌能力的聚多巴胺/纳米银修饰多孔钛。 Objective To investigate the reaction time influence on the antibacterial property and cytocompatibility of polydopamine/silver nanoparticles modified porous titanium. Methods A bioinspired polydopamine (PDA) layer was deposited on titanium surface by polymerization. By adjusting the response time of nanosize silver particles (15 min, 30 min, 60 min) of the modified titanium, different concentration of silver nanoparticles modified titanium coated by polydopamine were prepared. Using scanning electron microscopy (SEM), cell adhesion, cell toxicity and sterilization rate examination to evaluate the in vitro biocompatibility and antibacterial properties of polydopamine modified titanium with load of different concentration of silver nanoparticles. Results The modified titanium surface material with the response time of 15 min in nanosize silver particles loading, showed better cell adhesion ability, lower cytotoxicity and more satisfactory antibacterial properties than the others. Conclusion By adjusting the reaction time of nano silver deposition, the silver ion release quantity is adjustable, and the polydopamine/silver nanoparticles modified porous titanium, which have good cell compatibility and strong antibacterial ability, can be gained.
出处 《组织工程与重建外科杂志》 2015年第5期295-300,319,326,共8页 Journal of Tissue Engineering and Reconstructive Surgery
基金 国家自然科学基金项目(81271957)
关键词 多孔钛 聚多巴胺 纳米银颗粒 生物学性能 反应时间 Porous titanium Polydopamine Silver nanoparticles Biocompatibility Reaction time
  • 相关文献

参考文献20

  • 1Lee H, Dellatore SM, Miller WM, et al. Mussel-inspired surface chemistry for muhifunctional coatings [J]. Science,2007,318 (5849):426-430.
  • 2Lynge ME, van der Westen R, Postma A, et al. Polydopamine-a nature-inspired polymer coating for biomedical science [J]. Nanosc ale,2013,3 (12) :4916-4928.
  • 3De Giglio E, Cafagna D, Cometa S, et al. An innovative, easily fabricated, silver nanopartiele-based titanium implant coating: development and analytical characterization [J]. Anal Bioanal Chem,2013,405(2-3):805-816.
  • 4Ball V, Nguyen I, Haupt M, et al. The reduction of Ag+ in metallic silver on pseudomelanin films allows for antibacterial activity but does not imply unpaired electrons [J]. J Colloid Interface Sci,2011,364(2):359-365.
  • 5Ueda M, Ikeda M, Ogawa M. Chemical-hydrothermal combined surface modification of titanium for improvement of osteointegration [J]. Mater Sci Eng,2009,29(3):994-1000.
  • 6谭英,谭帼馨,宁成云,周蕾,于鹏,王航,陈晓峰.钛表面化学氧化法构建纳米凝胶层性能及机理研究[J].稀有金属材料与工程,2014,43(10):2425-2430. 被引量:1
  • 7Ye Q, Zhou F, Liu W. Bioinspired catecholic chemistry for surface modification [J]. Chem Soc Rev,2013,40(7):4244-4258.
  • 8Zhang RX, Braeken L, Luis P, et al. Novel binding procedure of TiO2 nanoparticles to thin film composite membranes via self- polymerized polydopamine [J]. J Membr Sci,2013,15(437):179-188.
  • 9Zhang Y, Zhang M. Three-dimensional macroporons calcium phosphate bioceramics with nested chitosan sponges for load- bearing bone implants [J]. J Biomed Mater Res,2002,61(1):1-8.
  • 10Navarro E, Piccapietra F, Wagner B, et al. Toxicity of silver nanoparticles to Chlamydomonas reinhardtii [J]. Environ Sci Technol,2008,42(23):8959-8964.

二级参考文献14

  • 1Lai Min, Cai Kaiyong, Hu Yan et al. Colloids and Surfaces B." Biointerfaces[J], 2012, 97:211.
  • 2Theresa Raimondo, Sabrina Puckett, Thomas J Webster. Inter- national Journal of Nanomedicine[ J], 2010, 5:647.
  • 3Fiorenzo Vetrone, Fabio Variola, Paulo Tambasco de Oliveira et al. Nano Letters[J], 2009, 9(2): 659.
  • 4Ueda M, Ikeda M, Ogawa M. Materials Science and Engine- ering C[J], 2009, (29): 994.
  • 5Tan Guoxin, Zhang Lin, Ning Chengyun et al. Thin SolidFilm [J], 2011, 15(519): 4997.
  • 6Tadashi Kokubo, Hiroaki Takadama. Biomaterials[J], 2006(27): 2907.
  • 7Tan Guoxin, Chen Rong, Ning Chengyun et al. Journal of Applied Polymer Science[J], 2012, 124:459.
  • 8Pegueroles M, Aparicio C, Bosioa M et al. Acta Biomateria- lia[J], 2010, 6:291.
  • 9Keng-Liang Ou, Yung-Hsun Shih, Chiung-Fang Huang et al. Applied Surface Science[J], 2008, 255(5): 2046.
  • 10Zhu Xiaolong, Chen Jun, Lutz Scheideleretal. Biomaterials [J], 2004, 25(18): 4087.

同被引文献34

引证文献2

二级引证文献5

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