Chongqing Key Laboratory of Nano/Micro Composite Materials and Devices, School of Metallurgy and Materials Engineering, Chongqing University of Science and Technology, Chongqing 401331, PR China.
Chongqing Engineering Laboratory of Nano/Micro Biomedical Detection Technology, School of Metallurgy and Materials Engineering, Chongqing University of Science and Technology, Chongqing 401331, PR China.
Mater Sci Eng C Mater Biol Appl. 2019 Jun;99:57-67. doi: 10.1016/j.msec.2019.01.079. Epub 2019 Jan 19.
The regeneration of load-bearing soft tissues has long driven the research and development of bioactive hydrogels. A major challenge facing the application of hydrogels to load-bearing tissues is the development of hydrogels with appropriate biological functionality and biomechanical stability that closely mimic the host tissue. In this paper, we describe a newly synthesized cell-laden interpenetrating polymer network (IPN) hydrogel based on gelatin methacrylate (GelMA) and silk fibroin (SF) that was formed via sequential sonication and photocrosslinking. The experimental results revealed that SF-GelMA IPN hydrogels exhibited high swelling ratios, excellent mechanical properties, resistance to enzymatic degradation by collagenase, and porous internal microstructures. Moreover, these properties could be tailored by changing the prepolymer components. MC3T3-E1 pre-osteoblasts attached to and subsequently proliferated on the IPN hydrogels, as demonstrated by fluorescein diacetate/propidium iodide (FDA/PI) staining and Cell Counting Kit-8 (CCK-8) analysis. In addition, the encapsulation of MC3T3-E1 pre-osteoblasts and a subsequent cell viability assay demonstrated that the entire IPN formation process was compatible with cells and that the growth of encapsulated cells could be tuned by adjusting the GelMA concentration, underlining their versatility for various load-bearing soft tissue engineering. Overall, this study introduces a class of mechanically robust and tunable cell-laden IPN hydrogels which have great potential as load-bearing soft tissue engineering scaffold.
负载软组织的再生长期以来一直推动着生物活性水凝胶的研究和开发。水凝胶在承重组织中的应用面临的一个主要挑战是开发具有适当生物功能和生物力学稳定性的水凝胶,使其能够与宿主组织紧密模拟。在本文中,我们描述了一种新合成的细胞负载互穿聚合物网络(IPN)水凝胶,该水凝胶基于甲基丙烯酰化明胶(GelMA)和丝素纤维(SF),通过顺序超声和光交联形成。实验结果表明,SF-GelMA IPN 水凝胶具有高溶胀比、优异的机械性能、对胶原酶的酶降解的抵抗力以及多孔的内部微观结构。此外,这些特性可以通过改变预聚物成分来进行调整。荧光二乙酸酯/碘化丙啶(FDA/PI)染色和细胞计数试剂盒-8(CCK-8)分析表明,MC3T3-E1 前成骨细胞附着在 IPN 水凝胶上,并随后增殖。此外,MC3T3-E1 前成骨细胞的包封和随后的细胞活力测定表明,整个 IPN 形成过程与细胞兼容,并且通过调整 GelMA 浓度可以调节包封细胞的生长,突出了它们在各种承重软组织工程中的多功能性。总体而言,这项研究介绍了一类机械强度高且可调的细胞负载 IPN 水凝胶,它们具有作为承重软组织工程支架的巨大潜力。