Aiming at the poor mechanical property and formability of hydrogels
agarose is incorporated with collagen to prepare a composite hydrogel with good biological
mechanical and structural properties. The blending methods of agarose and collagen solutions are investigated
and the composite hydrogel solutions with same collagen content and different agarose contents are finally prepared. The comprehensive properties of the resultant hydrogels derived from different composite solutions are evaluated and compared with collagen hydrogel. The results indicate that with the increase of agarose content
the mechanical property and microstructure replication property of the composite hydrogels are gradually improved while the biological property decreases. The hydrogel with 0.003 g/mL collagen and 0.004 g/mL agarose is chosen as the optimal agarose/collagen composition. In-vivo implantation experiment verifies that such agarose/collagen composite hydrogel effectively weakens material degradation and simultaneously induce moderate rejection response. This agarose/collagen hydrogel is expected to be used for fabrication of organ scaffolds with biomimetic vascular system.
GRIFFITH L G. Emerging design principles in biomaterials and scaffolds for tissue engineering [J]. Annals of the New York Academy of Sciences, 2002, 961(1): 83-95.
SONG Y S, LIN R L, MONTESANO G, et al. Engineered 3D tissue models for cell-laden microfluidic channels [J]. Analytical and Bioanalytical Chemistry, 2009, 395(1): 185-193.
ZAVAN B, BRUN P, VINDIGNI V, et al. Extracellular matrix-enriched polymeric scaffolds as a substrate for hepatocyte cultures: in vitro and in vivo studies [J]. Biomaterials, 2005, 26(34): 7038-7045.
LI Keguo, OU Xinjian, WANG Yun, et al. Improver performance of primary rat hepatocytes on blended natural polymers [J]. Journal of Biomedical Materials Research: Part A, 2005, 75A(2): 268-274.
赵倩. 卷裹型肝组织支架的仿生设计制造及生物学评价 [D]. 西安: 西安交通大学, 2011.
SLAUGHTER B V, KHURSHID S S, FISHER O Z, et al. Hydrogels in regenerative medicine [J]. Advanced Materials, 2009, 21(32/33): 3307-3329.
LEE C H, SINGLA A, LEE Y. Biomedical applications of collagen [J]. International Journal of Pharmaceutics, 2001, 221(1/2): 1-22.
CROSS V L, ZHENG Y, WON CHOI N, et al. Dense type I collagen matrices that support cellular remodeling and microfabrication for studies of tumor angiogenesis and vasculogenesis in vitro [J]. Biomaterials, 2010, 31(33): 8596-8607.[10] ACHILLI M, LAGUEUX J, MANTOVANI D. On the effects of UV-C and pH on the mechanical behavior, molecular conformation and cell viability of collagen-based scaffold for vascular tissue engineering [J]. Macro-Molecular Bioscience, 2010, 10(3): 307-316.
NORMAND V, LOOTENS D L, AMICI E, et al. New insight into agarose gel mechanical properties [J]. Biomacromolecules, 2000, 1(4): 730-738.
ULRICH T A, JAIN A, TANNER K, et al. Probing cellular mechanobiology in three-dimensional culture with collagen-agarose matrices [J]. Biomaterials, 2010, 31(7): 1875-1884.
RAJAN N, HABERMEHL J, COTÉ M F, et al. Preparation of ready-to-use, storable and reconstituted type I collagen from rat tail tendon for tissue engineering applications [J]. Nature Protocols, 2007, 1(6): 2753-2758.