THE DEGRADATION AND BIOCOMPATIBILITY OF WATERBORNE BIODEGRADABLE POLYURETHANES FOR TISSUE ENGINEERING

Ni-jia Song Xia Jiang Jie-hua Li Yong Pang Jian-shu Li Hong Tan Qiang Fua

Citation:  Ni-jia Song, Xia Jiang, Jie-hua Li, Yong Pang, Jian-shu Li, Hong Tan, Qiang Fua. THE DEGRADATION AND BIOCOMPATIBILITY OF WATERBORNE BIODEGRADABLE POLYURETHANES FOR TISSUE ENGINEERING[J]. Chinese Journal of Polymer Science, 2013, 31(10): 1451-1462. doi: 10.1007/s10118-013-1315-7 shu

THE DEGRADATION AND BIOCOMPATIBILITY OF WATERBORNE BIODEGRADABLE POLYURETHANES FOR TISSUE ENGINEERING

  • 基金项目:

    National Natural Science Foundation of China (Nos. 51073104 and 51173118), the Changjiang Scholars and Innovative Research Teams in Universities (No. IRT1163), the Sichuan Provincial Science Fund for Distinguished Young Scholars (No. 09ZQ026-024).

摘要: To better investigate the degradation and biocompatibility of waterborne biodegradable polyurethanes for tissue engineering, a series of new waterborne biodegradable polyurethanes (PEGPUs) with low degree of crosslinking was synthesized using IPDI, BDO and L-lysine as hard segments, PCL and PEG as soft segment. The bulk structures and properties of the prepared polyurethanes were characterized by Fourier transform infrared spectroscopy (FTIR), differential scanning calorimetry (DSC), tensile mechanical tests and water contact angle (WCA) measurements. The degree of microphase separation was slightly improved because of the lowered crosslinking degree of these PEGPUs in comparison with the high cross-linking degree samples, leading to good mechanical properties, as indicated by DSC and stress-strain data. Moreover, biodegradability of the polyurethanes was evaluated in phosphate buffer solutions (PBS) under different pH values and enzymatic solution at pH 7.4 through weight loss monitoring. The results suggested that the degradation of these PEGPUs was closely related to their bulk and surface properties. And the degradation products didnt show apparent inhibition effect against fibroblasts in vitro. These studies demonstrated that the waterborne biodegradable polyurethanes could find potential use in soft tissue engineering and tissue regeneration.

English


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  • 发布日期:  2013-10-05
  • 收稿日期:  2012-11-08
  • 修回日期:  2013-01-06
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