In situ forming hydrogel composed of hyaluronate and polygalacturonic acid for prevention of peridural fibrosis

被引:0
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作者
Cheng-Yi Lin
Hsiu-Hui Peng
Mei-Hsiu Chen
Jui-Sheng Sun
Tse-Ying Liu
Ming-Hong Chen
机构
[1] National Yang-Ming University,Department of Biomedical Engineering
[2] Far Eastern Memory Hospital,Department of Medicine
[3] National Taiwan University Hospital Hsin-Chu Branch,Department of Orthopedics
[4] Taipei Tzu Chi Hospital,Division of Neurosurgery, Department of Surgery
[5] Tzu Chi University,Department of Surgery, School of Medicine
[6] Ming Chuang University,Department of Biomedical Engineering
来源
Journal of Materials Science: Materials in Medicine | 2015年 / 26卷
关键词
Hyaluronic Acid; Gelation Time; Compressive Modulus; Composite Hydrogel; Polygalacturonic Acid;
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中图分类号
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摘要
Hyaluronic acid-based hydrogels can reduce postoperative adhesion. However, the long-term application of hyaluronic acid is limited by tissue mediated enzymatic degradation. To overcome this limitation, we developed a polygalacturonic acid and hyaluronate composite hydrogel by Schiff’s base crosslinking reaction. The polygalacturonic acid and hyaluronate composite hydrogels had short gelation time (less than 15 s) and degraded by less than 50 % in the presence of hyaluronidase for 7 days. Cell adhesion and migration assays showed polygalacturonic acid and hyaluronate composite hydrogels prevented fibroblasts from adhesion and infiltration into the hydrogels. Compared to hyaluronate hydrogels and commercial Medishield™ gels, polygalacturonic acid and hyaluronate composite hydrogel was not totally degraded in vivo after 4 weeks. In the rat laminectomy model, polygalacturonic acid and hyaluronate composite hydrogel also had better adhesion grade and smaller mean area of fibrous tissue formation over the saline control and hyaluronate hydrogel groups. Polygalacturonic acid and hyaluronate composite hydrogel is a system that can be easy to use due to its in situ cross-linkable property and potentially promising for adhesion prevention in spine surgeries.
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