Zhu Junchao, Xie Fengwei, Qiu Zhipeng, Chen Ling
Ministry of Education Engineering Research Center of Starch & Protein Processing, Guangdong Province Key Laboratory for Green Processing of Natural Products and Product Safety, School of Food Science and Engineering, South China University of Technology, Guangzhou 510640, China.
School of Engineering, Newcastle University, Newcastle Upon Tyne NE1 7RU, United Kingdom.
Carbohydr Polym. 2024 Nov 1;343:122438. doi: 10.1016/j.carbpol.2024.122438. Epub 2024 Jun 30.
The quest to develop 3D starch-based printing hydrogels for the controlled release of active substances with excellent mechanical and printing properties has gained significant attention. This work introduced a facile method based on crosslinking via Schiff base reaction for preparing bicomponent hydrogels. The method involved the utilization of customizable oxidized starch (OS) and chitosan (CS), enabling superior printing performance through the precise control of various active carbonyl-carboxyl ratios (ACR, 2:1, 1:1, and 2:3, respectively) of OS. OS-CS hydrogel (OSC) with an ACR level of 2:1 (OS-2-y%CS) underwent rearrangement during printing environment, fostering increased Schiff base reaction with a higher crosslinking degree and robust high structural recovery (>95 %). However, with decreasing ACR levels (from 2:1 to 2:3), the printing performance and mechanical strength of printed OSC (POSC) declined due to lower Schiff base bonds and increased phase separation. Compared with printed OS, POS-2-2%CS exhibited a remarkable 1250.52 % increase in tensile strength and a substantial 2424.71 % boost in compressive strength, enhanced shape fidelity and notable self-healing properties. Moreover, POS-2-2%CS exhibited stable diffusive drug release, showing potential application in the pH-responsive release of active substances. Overall, controlling the active carbonyl-carboxyl ratios provided an efficient and manageable approach for preparing high-performance 3D-printed hydrogels.
开发具有优异机械性能和打印性能的用于活性物质控释的3D淀粉基打印水凝胶的研究已引起广泛关注。这项工作介绍了一种基于席夫碱反应交联制备双组分水凝胶的简便方法。该方法利用了可定制的氧化淀粉(OS)和壳聚糖(CS),通过精确控制OS的各种活性羰基-羧基比(ACR,分别为2:1、1:1和2:3)实现了卓越的打印性能。ACR水平为2:1(OS-2-y%CS)的OS-CS水凝胶(OSC)在打印环境中发生重排,促进了席夫碱反应增加,交联度更高,具有强大的高结构恢复率(>95%)。然而,随着ACR水平降低(从2:1到2:3),由于席夫碱键减少和相分离增加,打印的OSC(POSC)的打印性能和机械强度下降。与打印的OS相比,POS-2-2%CS的拉伸强度显著提高了1250.52%,抗压强度大幅提高了2424.71%,形状保真度增强,具有显著的自愈性能。此外,POS-2-2%CS表现出稳定的药物扩散释放,在活性物质的pH响应释放方面显示出潜在应用。总体而言,控制活性羰基-羧基比为制备高性能3D打印水凝胶提供了一种有效且可控的方法。