期刊文献+

BIOCOMPATIBILITY OF A PDMS-COATED MICRO-DEVICE:BLADDER VOLUME MONITORING SENSOR

BIOCOMPATIBILITY OF A PDMS-COATED MICRO-DEVICE:BLADDER VOLUME MONITORING SENSOR
原文传递
导出
摘要 We evaluated the biocompatibility of a dimethylpolysiloxane-coated micro-device which had been designed for monitoring real-time bladder volume in previous studies. The extract assay with dimethylpolysiloxane which had been used for coating the micro-device to measure the bladder volume was performed as an in vitro cytotoxicity test. For in vivo biocompatibility testing, the inflammatory responses around the implantation site of the micro-device in subcutaneous tissue of rat were assessed by light microscope with H&E stain and fluorescence microscope with ED1 stain and von Willebrand factor stain. The averages of cell viability in dimethylpolysiloxane group were 84.6% and 82.3% at 24 h and 72 h incubation, respectively. The qualitative evaluations with light and fluorescence microscope revealed that the inflammatory changes peaked during 2 weeks but almost disappeared at 4 weeks after implantation of devices. The quantitative evaluations for granulation layer formation and neovascularization showed that the thickness of the layer in dimethylpolysiloxane group peaked during 2 weeks but it came to be stabilized at 4 weeks as thin as at 2 weeks in control group, and the frequency of neovascularization was higher in dimethylpolysiloxane group than in control group but it was not increased with time. The dimethylpolysiloxane-coated micro-device is thought be a reliable bio-medical device. We evaluated the biocompatibility of a dimethylpolysiloxane-coated micro-device which had been designed for monitoring real-time bladder volume in previous studies. The extract assay with dimethylpolysiloxane which had been used for coating the micro-device to measure the bladder volume was performed as an in vitro cytotoxicity test. For in vivo biocompatibility testing, the inflammatory responses around the implantation site of the micro-device in subcutaneous tissue of rat were assessed by light microscope with H&E stain and fluorescence microscope with ED1 stain and von Willebrand factor stain. The averages of cell viability in dimethylpolysiloxane group were 84.6% and 82.3% at 24 h and 72 h incubation, respectively. The qualitative evaluations with light and fluorescence microscope revealed that the inflammatory changes peaked during 2 weeks but almost disappeared at 4 weeks after implantation of devices. The quantitative evaluations for granulation layer formation and neovascularization showed that the thickness of the layer in dimethylpolysiloxane group peaked during 2 weeks but it came to be stabilized at 4 weeks as thin as at 2 weeks in control group, and the frequency of neovascularization was higher in dimethylpolysiloxane group than in control group but it was not increased with time. The dimethylpolysiloxane-coated micro-device is thought be a reliable bio-medical device.
出处 《Chinese Journal of Polymer Science》 SCIE CAS CSCD 2012年第2期242-249,共8页 高分子科学(英文版)
基金 financially supported in part by the development program for future fundamental technology of the Ministry of Education,Science and Technology(No.2009-0082114) the Healthy Medical Treatment Research and Development Program of the Ministry of Health & Welfare(No.A090481)
关键词 Dimethylpolysiloxane DEVICES Biocompatibility testing. Dimethylpolysiloxane Devices Biocompatibility testing.
  • 相关文献

参考文献16

  • 1Kakaday, T., Plunkett, M., McInnes, S., Jimmy Li, J.S., Voelcker, N.H. and Craig, J.E., IFMBE Proc., 2009, 23: 198.
  • 2Tan, R, McClure, T., Lin, C.K., Jea, D., Dabiri, F., Massey, T., Sarrafzadeh, M., Srivastava, M., Montemagno, C.D.,Schulam, P. and Schmidt, J., Biomed. Microdevices, 2009, 11: 259.
  • 3Lee, D.S., Kim, S.J., Sohn, D.W., Choi, B., Lee, M.K., Lee, s.r. and Kim, S.W., Kaohsiung J. Med. Sci., 2011,27(4): 133.
  • 4Provost, B. and Sawan, M., Med. BioI. Eng. Comput., 1997,35(6): 691.
  • 5Pizzoferrato, A, Ciapetti, G., Stea S., Cenni, E., Arciola, C.R., Granch, D. and Savarino, L., Clin. Mater., 1994,15(3): 173.
  • 6Belanger, M.C., Marois, Y., Roy, R, Mehri, Y., Wagner, E., Zhang, Z., King, M.W., Yang, M., Hahn, C. and Guidoin, R., Artif. Organs, 2000, 24: 879.
  • 7Sasoglu, F.M., Bohl, AJ. and Layton, B.E., J. Micromech. Microeng., 2007, 17: 623.
  • 8Tang, L. and Eaton, J.W., Am. J. Clin. Pathol., 1995, 103(4): 466.
  • 9Anderson, J.M., Cardiovasc. Pathol., 1993,2(3): 33S.
  • 10Dalu, A, Blaydes, B.S., Lomax, L.G. and Delclos, K.B., Biomaterials, 2000, 21(19): 1947.

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