Yang Meng-Ru, Cheng Yu-Ting, Tsai Hsieh-Chih, Darge Haile Fentahun, Huang Chun-Chiang, Lin Shuian-Yin
Graduate Institute of Applied Science and Technology, National Taiwan University of Science and Technology, Taipei, Taiwan.
Graduate Institute of Applied Science and Technology, National Taiwan University of Science and Technology, Taipei, Taiwan; Advanced Membrane Materials Center, National Taiwan University of Science and Technology, Taipei, Taiwan; R&D Center for Membrane Technology, Chung Yuan Christian University, Taoyuan, Taiwan.
Biomater Adv. 2023 Sep;152:213504. doi: 10.1016/j.bioadv.2023.213504. Epub 2023 Jun 7.
As a natural polymer with good biocompatibility, gelatin hydrogel has been widely used in the field of biomedical science for a long time. However, the lack of suitable gelation temperature and mechanical properties often limit the clinical applicability in diverse and complex environments. Here, we proposed a strategy based on the Hofmeister effect that gelatin hydrogels were soaked in the appropriate concentration of sodium sulfate solution, and the change in molecular chain interactions mainly guided by kosmotropic ions resulted in a comprehensive adjustment of multiple properties. A series of gelatin hydrogels treated with different concentrations of the salt solution gave rise to microstructural changes, which brought a decrease in the number and size of pores, a wide range of gelation temperature from 32 °C to 46 °C, a stress enhancement of about 40 times stronger to 0.8345 MPa, a strain increase of about 7 times higher to 238.05 %, and a certain degree of electrical conductivity to be utilized for versatile applications. In this regard, for example, we prepared microneedles and obtained a remarkable compression (punctuation) strength of 0.661 N/needle, which was 55 times greater than those of untreated ones. Overall, by integrating various characterizations and suggesting the corresponding mechanism behind the phenomenon, this method provides a simpler and more convenient performance control procedure. This allowed us to easily modulate the properties of the hydrogel as per the intended purpose, revealing its vast potential applications such as smart sensors, electronic skin, and drug delivery.
作为一种具有良好生物相容性的天然聚合物,明胶水凝胶长期以来一直在生物医学科学领域中广泛应用。然而,缺乏合适的凝胶化温度和机械性能常常限制其在多样复杂环境中的临床适用性。在此,我们提出了一种基于霍夫迈斯特效应的策略,即将明胶水凝胶浸泡在适当浓度的硫酸钠溶液中,由促晶离子主导的分子链相互作用变化导致多种性能的全面调整。一系列经不同浓度盐溶液处理的明胶水凝胶产生了微观结构变化,这使得孔隙数量和尺寸减少,凝胶化温度范围从32℃至46℃,应力增强约40倍至0.8345MPa,应变增加约7倍至238.05%,并具有一定程度的导电性以用于多种应用。在这方面,例如,我们制备了微针并获得了0.661N/针的显著抗压(穿刺)强度,这比未处理的微针高出55倍。总体而言,通过整合各种表征并揭示现象背后的相应机制,该方法提供了一种更简单便捷的性能控制程序。这使我们能够根据预期目的轻松调节水凝胶的性能,揭示其在智能传感器、电子皮肤和药物递送等方面的巨大潜在应用。