Gil Eun S, Frankowski David J, Bowman Michelle K, Gozen Arif O, Hudson Samuel M, Spontak Richard J
Fiber and Polymer Science Program, North Carolina State University, Raleigh, 27695, USA.
Biomacromolecules. 2006 Mar;7(3):728-35. doi: 10.1021/bm050622i.
Novel protein blends have been prepared by mixing gelatin (G) with Bombyx mori silk fibroin (SF) and using aqueous methanol (MeOH) to post-induce SF crystallization. When co-cast from solution, amorphous blends of these polymers appear homogeneous, as discerned from visual observation, microscopy, and Fourier-transform infrared (FTIR) spectroscopy. Upon subsequent exposure to aqueous MeOH, SF undergoes a conformational change from random coil to beta sheet. This transformation occurs in pure SF, as well as in each of the G/SF blends, according to X-ray diffractometry and thermal calorimetry. The influence of MeOH-induced SF crystallization on structure and property development has been ascertained in terms of preparation history and blend composition. Thermal gravimetric analysis reveals that the presence of beta sheets in SF and G/SF blends improves thermal stability, while extensional rheometry confirms that SF crystallization enhances the tensile properties of the blends. By preserving a support scaffold above the G helix-to-coil transition temperature, the formation of crystalline SF networks in G/SF blends can be used to stabilize G-based hydrogels for biomaterial and pharmaceutical purposes. The present study not only examines the properties of G/SF blends before and after SF crystallization, but also establishes the foundation for future research into thermally responsive G/SF bioconjugates.
通过将明胶(G)与家蚕丝素蛋白(SF)混合,并使用甲醇水溶液(MeOH)对SF进行后诱导结晶,制备了新型蛋白质共混物。从溶液中共浇铸时,通过肉眼观察、显微镜检查和傅里叶变换红外(FTIR)光谱可以看出,这些聚合物的无定形共混物看起来是均匀的。随后暴露于甲醇水溶液中时,SF会发生从无规卷曲到β折叠的构象变化。根据X射线衍射和热分析量热法,这种转变发生在纯SF以及每种G/SF共混物中。已根据制备历史和共混物组成确定了MeOH诱导的SF结晶对结构和性能发展的影响。热重分析表明,SF和G/SF共混物中β折叠的存在提高了热稳定性,而拉伸流变学证实SF结晶增强了共混物的拉伸性能。通过在G螺旋-无规线团转变温度以上保留支撑支架,G/SF共混物中结晶SF网络的形成可用于稳定用于生物材料和制药目的的基于G的水凝胶。本研究不仅研究了SF结晶前后G/SF共混物的性能,还为未来对热响应性G/SF生物共轭物的研究奠定了基础。