화학공학소재연구정보센터
Korean Journal of Materials Research, Vol.16, No.11, 676-680, November, 2006
마이크로파에 의해 합성된 β-TCP/PLGA 복합체의 의사체액에서의 분해 거동
In vitro Degradation of β-TCP/PLGA Composites Prepared with Microwave Energy in Simulated Body Fluid
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The biodegradable -tricalcium phosphate (-TCP)/poly(lactide-co-glycolide) (PLGA) composites were synthesized by in situ polymerization with microwave energy. The degradation behavior of -TCP/PLGA composite was investigated by soaking in simulated body fluid (SBF) for 4 weeks. The molecular weight of the -TCP/PLGA composites decreased with soaking time until week 2, whereas the loss rate of molecular weight reduced after week 2. The incubation time was needed for the degradation of the -TCP, indicating that the -TCP should be detached from the PLGA matrix and then degraded into SBF solution. The studies of mass loss of the composites with the soaking time revealed that the degradation behavior of PLGA would be processed with the transformation from the polymer to the oligomer followed by the degradation. Morphological changes, whisker-like, due to transformation and degradation of polymer in the composites were observed after week 2. On the basis of the results, it found that the degradation behavior of -TCP/PLGA composites was influenced by the -TCP content in the composites and the degradation rate of the composites could be controlled by the initial molecular weight of PLGA in the composites.
  1. Kissel T, Li Y, Unger F, ad. Drug. Deliv. Reviews, 54, 99 (2002)
  2. Langer R, Vacanti JP, Science, 260, 920 (1993)
  3. Wu L, Ding J, Biomaterials, 25, 5821 (2004)
  4. Lu L, Peter SJ, LyMan MD, Lai HL, Leite SM, Tamada JA, Uyama S, Vacanti JP, Langer R, Mikos AG, Biomaterials, 21, 1837 (2000)
  5. Agrawal CM, Micjinney JS, Lanctot D, Athanasiou KA, Biomaterials, 21, 2443 (2000)
  6. Langer R, Science, 249, 1527 (1990)
  7. Kim DH, Martin DC, Biomaterials, 27, 3031 (2006)
  8. Eniola AO, Hammer DA, J. of Controlled Release, 87, 15 (2003)
  9. Wang Z, Wang S, Marois Y, Guidoin R, Zhang Z, Biomaterials, 26, 7387 (2005)
  10. Nguyen KT, Shaikh N, Shukla KP, Su SH, Ederhart RC, Tang L, Biomaterials, 25, 5333 (2004)
  11. Ignatitus AA, Augat P, Claes LE, J. Biomater. Sci. Polymer Edn., 12, 185 (2001)
  12. Kesenci K, Fambri L, Migliaresi C, Piskin E, J. Biomater. Sci. Polymer Edn., 11, 617 (2000)
  13. Oyane A, Kim HM, Furuya T, Kokubo T, Miyazaki T, Nakamura T, J. Biomed. Mater. Res., 65A, 188 (2003)
  14. Jin HH, Min SH, Park HS, Yoon SY, Kor, J. Mater. Res., 16, 1 (2006)
  15. Dornb AJ, Kost J, Wiseman DM, Drug Targeting Delivery, Vol. 7 Handbook of Biodegradable Polymers, CRC, Boca Raton (1998) (1998)
  16. Dui Y, Steinbuchel A, Biopolymers, Vol. 4 Polyesters lll, Wiley-VCH, Weinheim (2002) (2002)