The effects of different crossing-linking conditions of genipin on type I collagen scaffolds: an in vitro evaluation
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  • 作者:Xiujie Zhang (2)
    Xueying Chen (1)
    Ting Yang (1)
    Naili Zhang (1)
    Li Dong (1)
    Shaoying Ma (1)
    Xiaoming Liu (1)
    Mo Zhou (1)
    Baoxing Li (1)
  • 关键词:Cross ; link ; Genipin ; Type I collagen ; Scaffolds
  • 刊名:Cell and Tissue Banking
  • 出版年:2014
  • 出版时间:December 2014
  • 年:2014
  • 卷:15
  • 期:4
  • 页码:531-541
  • 全文大小:1,111 KB
  • 参考文献:1. Aramwit P, Siritienthong T, Srichana T, Ratanavaraporn J (2013) Accelerated healing of full-thickness wounds by genipin-crosslinked silk sericin/PVA scaffolds. Cells Tissues Organs 197:224-38 CrossRef
    2. Bedran-Russo AK, Castellan CS, Shinohara MS, Hassan L, Antunes A (2011) Characterization of biomodified dentin matrices for potential preventive and reparative therapies. Acta Biomater 7:1735-741 CrossRef
    3. Bi L, Cao Z, Hu Y, Song Y, Yu L et al (2011) Effects of different crosslinking conditions on the properties of genipin-crosslinked chitosan/collagen scaffolds for cartilage tissue engineering. J Mater Sci Mater Med 22:51-2 CrossRef
    4. Castellan CS, Pereira PN, Grande RH, Bedran-Russo AK (2010) Mechanical characterization of proanthocyanidin–dentin matrix interaction. Dent Mater 26:968-73 CrossRef
    5. Cauich-Rodriguez JV, Deb S, Smith R (1996) Effect of crosslinking agents on the dynamic mechanical properties of hydrogel blends of poly(acrylic acid)–poly(vinyl alcohol-vinyl acetate. Biomaterials 17:2259-264 CrossRef
    6. Chaubaroux C, Vrana E, Debry C, Schaaf P, Senger B et al (2012) Collagen-based fibrillar multilayer films crosslinked by a natural agent. Biomacromolecules 13:2128-135 CrossRef
    7. Chen YS, Chang JY, Cheng CY, Tsai FJ, Yao CH et al (2005) An in vivo evaluation of a biodegradable genipin-cross-linked gelatin peripheral nerve guide conduit material. Biomaterials 26:3911-918 CrossRef
    8. Chiono V, Pulieri E, Vozzi G, Ciardelli G, Ahluwalia A et al (2008) Genipin-crosslinked chitosan/gelatin blends for biomedical applications. J Mater Sci Mater Med 19:889-98 CrossRef
    9. Cornwell KG, Lei P, Andreadis ST, Pins GD (2007) Crosslinking of discrete self-assembled collagen threads: effects on mechanical strength and cell–matrix interactions. J Biomed Mater Res A 80:362-71 CrossRef
    10. Dong CM, Wu X, Caves J, Rele SS, Thomas BS et al (2005) Photomediated crosslinking of C6-cinnamate derivatized type I collagen. Biomaterials 26:4041-049 CrossRef
    11. Fernandes-Silva S, Moreira-Silva J, Silva TH, Perez-Martin RI, Sotelo CG et al (2013) Porous hydrogels from shark skin collagen crosslinked under dense carbon dioxide atmosphere. Macromol Biosci 13:1621-631 CrossRef
    12. Grant ME (2007) From collagen chemistry towards cell therapy—a personal journey. Int J Exp Pathol 88:203-14 CrossRef
    13. Hiraishi N, Sono R, Islam MS, Otsuki M, Tagami J et al (2011) Effect of hesperidin in vitro on root dentine collagen and demineralization. J Dent 39:391-96 CrossRef
    14. Kato MT, Leite AL, Hannas AR, Buzalaf MA (2010) Gels containing MMP inhibitors prevent dental erosion in situ. J Dent Res 89:468-72 CrossRef
    15. Kim BC, Kim HG, Lee SA, Lim S, Park EH et al (2005) Genipin-induced apoptosis in hepatoma cells is mediated by reactive oxygen species/c-Jun NH2-terminal kinase-dependent activation of mitochondrial pathway. Biochem Pharmacol 70:1398-407 CrossRef
    16. Koide T, Daito M (1997) Effects of various collagen crosslinking techniques on mechanical properties of collagen film. Dent Mater J 16:1- Xueying Chen (1)
    Ting Yang (1)
    Naili Zhang (1)
    Li Dong (1)
    Shaoying Ma (1)
    Xiaoming Liu (1)
    Mo Zhou (1)
    Baoxing Li (1)

    2. Southern Medical University, Guangzhou, China
    1. China Institute for Radiation Protection, Taiyuan, 030006, China
  • ISSN:1573-6814
文摘
The purpose of this paper is to analyze the properties of fabricating rat tail type I collagen scaffolds cross-linked with genipin under different conditions. The porous genipin cross-linked scaffolds are obtained through a two step freeze-drying process. To find out the optimal cross-link condition, we used different genipin concentrations and various cross-linked temperatures to prepare the scaffolds in this study. The morphologies of the scaffolds were characterized by scanning electron microscope, and the mechanical properties of the scaffolds were evaluated under dynamic compression. Additionally, the cross-linking degree was assessed by ninhydrin assay. To investigate the swelling ratio and the in vitro degradation of the collagen scaffold, the tests were also carried out by immersion of the scaffolds in a PBS solution or digestion in a type I collagenase respectively. The morphologies of the non-cross-linked scaffolds presented a lattice-like structure while the cross-linked ones displayed a sheet-like framework. The morphology of the genipin cross-linked scaffolds could be significantly changed by either increasing genipin concentration or the temperature. The swelling ratio of each cross-linked scaffold was much lower than that of the control (non-cross-linked).The ninhydrin assay demonstrated that the higher temperature and genipin concentration could obviously increase the cross-linking efficiency. The in vitro degradation studies indicated that genipin cross-linking can effectively elevate the biostability of the scaffolds. The biocompatibility and cytotoxicity of the scaffolds was evaluated by culturing rat chondrocytes on the scaffold in vitro and by MTT. The results of MTT and the fact that the chondrocytes adhered well to the scaffolds demonstrated that genipin cross-linked scaffolds possessed an excellent biocompatibility and low cytotoxicity. Based on these results, 0.3?% genipin concentrations and 37?°C cross-linked temperatures are recommended.

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