Merrett Kim, Wan Fan, Lee Chyan-Jang, Harden James L
Department of Physics, University of Ottawa, Ontario K1N 6N5, Canada.
Ottawa Institute of Systems Biology, University of Ottawa, Ontario K1H 8M5, Canada.
ACS Biomater Sci Eng. 2021 Apr 12;7(4):1414-1427. doi: 10.1021/acsbiomaterials.1c00069. Epub 2021 Mar 18.
We present a collagen-mimetic protein of bacterial origin based upon a modified subdomain of the collagen-like Sc12 protein from , as an alternative collagen-like biomaterial platform that is highly soluble, forms stable, homogeneous, fluid-like solutions at elevated concentrations, and that can be efficiently fabricated into hydrogel materials over a broad range of pH conditions. This extended bacterial collagen-like (eBCL) protein is expressed in a bacterial host and purified as a trimeric assembly exhibiting a triple helical secondary structure in its collagen-like subdomain that is stable near physiological solution conditions (neutral pH and 37 °C), as well as over a broad range of pH conditions. We also show how this sequence can be modified to include biofunctional attributes, in particular, the Arg-Gly-Asp (RGD) sequence to elicit integrin-specific cell binding, without loss of structural function. Furthermore, through the use of EDC-NHS chemistry, we demonstrate that members of this eBCL protein system can be covalently cross-linked to fabricate transparent hydrogels with high protein concentrations (at least to 20% w/w). These hydrogels are shown to possess material properties and resistance to enzymatic degradation that are comparable or superior to a type I collagen control. Moreover, such hydrogels containing the constructs with the RGD integrin-binding sequence are shown to promote the adhesion, spreading, and proliferation of C2C12 and 3T3 cells in vitro. Due to its enhanced solubility, structural stability, fluidity at elevated concentrations, ease of modification, and facility of cross-linking, this eBCL collagen-mimetic system has potential for numerous biomedical material applications, where the ease of processing and fabrication and the facility to tailor the sequence for specific biological functionality are desired.
我们展示了一种基于来自[具体来源未提及]的类胶原蛋白Sc12蛋白的修饰亚结构域的细菌源类胶原蛋白,作为一种替代性的类胶原蛋白生物材料平台,它具有高溶解性,在高浓度下能形成稳定、均匀、类似流体的溶液,并且能在广泛的pH条件下高效制备成水凝胶材料。这种扩展的细菌类胶原蛋白(eBCL)蛋白在细菌宿主中表达,并作为三聚体组装体进行纯化,其类胶原蛋白亚结构域呈现三螺旋二级结构,在生理溶液条件(中性pH和37°C)附近以及广泛的pH条件下都很稳定。我们还展示了如何对该序列进行修饰以包含生物功能属性,特别是Arg-Gly-Asp(RGD)序列以引发整合素特异性细胞结合,同时不丧失结构功能。此外,通过使用EDC-NHS化学方法,我们证明了该eBCL蛋白系统的成员可以共价交联以制备高蛋白浓度(至少达到20% w/w)的透明水凝胶。这些水凝胶显示出具有与I型胶原蛋白对照相当或更优的材料性能和抗酶降解能力。此外,这种含有RGD整合素结合序列构建体的水凝胶在体外显示出能促进C2C12和3T3细胞的粘附、铺展和增殖。由于其增强的溶解性、结构稳定性、高浓度下的流动性、易于修饰以及交联便利性,这种eBCL类胶原蛋白模拟系统在众多生物医学材料应用中具有潜力,这些应用需要易于加工和制备以及能够针对特定生物功能定制序列。