Key Laboratory of Optic-electric Sensing and Analytical Chemistry for Life Science, MOE, Shandong Key Laboratory of Biochemical Analysis, College of Chemistry and Molecular Engineering, Qingdao University of Science and Technology, Qingdao, 266042, China.
Guangdong Key Laboratory for Research and Development of Natural Drugs, Guangdong Medical University, Zhanjiang, 524023, China.
Adv Sci (Weinh). 2024 Oct;11(40):e2402949. doi: 10.1002/advs.202402949. Epub 2024 Aug 29.
The good combination of high strength and high toughness is a long-standing challenge in the design of robust biomaterials. Meanwhile, robust biomaterials hardly perform fast and significant mechanical property changes under the trigger of light at room temperature. These limit the application of biomaterials in some specific areas. Here, photoresponsive alginate fibers are fabricated by using the designed azobenzene-containing surfactant as flexible contact point for cross-linking polysaccharide chains of alginate, which gain high mechanics through reinforced plastic strain and photo-modulating mechanics through isomerization of azobenzene. By transferring molecular motion into macro-scale mechanical property changes, such alginate fibers achieve reversible photo-modulations on the mechanics. Their breaking strength and toughness can be photo-modulated from 732 MPa and 112 MJ m to 299 MPa and 27 MJ m, respectively, leading to record high mechanical changes among the developed smart biomaterials. With merits of good tolerance to pH and temperature, fast response to light, and good biocompatibility, the reported fibers will be suitable for working in various application scenarios as new smart biomaterials. This study provides a new design strategy for gaining highly-strong and highly-tough photoresponsive biomaterials.
高强度和高韧性的良好结合是稳健生物材料设计中的一个长期挑战。同时,稳健的生物材料在室温下光的触发下几乎不会发生快速和显著的力学性能变化。这些限制了生物材料在某些特定领域的应用。在这里,通过使用设计的含偶氮苯表面活性剂作为藻酸盐多糖链交联的柔性接触点,制备了光响应性藻酸盐纤维,通过增强的塑性应变获得了高力学性能,并通过偶氮苯的异构化实现了光调节力学性能。通过将分子运动转化为宏观力学性能变化,这种藻酸盐纤维实现了力学性能的可逆光调节。它们的断裂强度和韧性可以分别从 732 MPa 和 112 MJ m 调节到 299 MPa 和 27 MJ m,这是在已开发的智能生物材料中创下的最高机械变化记录。所报道的纤维具有良好的耐 pH 值和温度、对光快速响应以及良好的生物相容性的优点,将适合作为新型智能生物材料在各种应用场景中使用。这项研究为获得高强度和高韧性的光响应性生物材料提供了新的设计策略。