Li Guangfeng, Lan Ni, Huang Yanling, Mo Chou, Wang Qiaoli, Wu Chaoxi, Wang Yifei
Department of Cell Biology, College of Life Science and Technology, Jinan University, Guangzhou 510642, China.
Guangdong Provincial Key Laboratory of Advanced Drug Delivery, Guangdong Provincial Engineering Center of Topical Precise Drug Delivery System, Guangdong Pharmaceutical University, Guangzhou 510006, China.
J Funct Biomater. 2023 Apr 14;14(4):222. doi: 10.3390/jfb14040222.
Gluten is a natural byproduct derived from wheat starch, possessing ideal biocompatibility. However, its poor mechanical properties and heterogeneous structure are not suitable for cell adhesion in biomedical applications. To resolve the issues, we prepare novel gluten (G)/sodium lauryl sulfate (SDS)/chitosan (CS) composite hydrogels by electrostatic and hydrophobic interactions. Specifically, gluten is modified by SDS to give it a negatively charged surface, and then it conjugates with positively charged chitosan to form the hydrogel. In addition, the composite formative process, surface morphology, secondary network structure, rheological property, thermal stability, and cytotoxicity are investigated. Moreover, this work demonstrates that the change can occur in surface hydrophobicity caused by the pH-eading influence of hydrogen bonds and polypeptide chains. Meanwhile, the reversible non-covalent bonding in the networks is beneficial to improving the stability of the hydrogels, which shows a prominent prospect in biomedical engineering.
麸质是一种源自小麦淀粉的天然副产品,具有理想的生物相容性。然而,其较差的机械性能和异质结构不适合生物医学应用中的细胞黏附。为了解决这些问题,我们通过静电和疏水相互作用制备了新型麸质(G)/十二烷基硫酸钠(SDS)/壳聚糖(CS)复合水凝胶。具体而言,麸质通过SDS进行改性,使其表面带负电荷,然后与带正电荷的壳聚糖结合形成水凝胶。此外,还研究了复合形成过程、表面形态、二级网络结构、流变性能、热稳定性和细胞毒性。而且,这项工作表明,由氢键和多肽链的pH引导影响引起的表面疏水性会发生变化。同时,网络中可逆的非共价键有利于提高水凝胶的稳定性,这在生物医学工程中显示出突出的前景。