Juan Yue, Xiaolin Yao*, Li Li, Wenguang Liu, Yilin Mei, Adam C. Midgley, Katsuyoshi Nishinari, Mouming Zhao and Guoliang Li,
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It has been demonstrated that the Gel-OKGM-Borax hydrogel possessed adjustable self-healing capabilities, injectability, biodegradability, and microstructural and physicochemical attributes, showing its potential for treating deep and irregular wounds. The SF-XG-PVA aerogel (unidirectional freezing, −20 °C) exhibited favorable flexibility, rapid water absorption rate (achieving equilibrium within 112 s), and slower degradation rate, indicating its suitability for the treatment of superficial and flat wounds. When applied in a hemostatic ability assay, the Gel-OKGM-Borax hydrogel elicited a hemostatic effect (32.87 ± 2.51 mg, 88 ± 13 s, <i>P</i> < 0.05), compared with the SF-XG-PVA aerogel (79.02 ± 6.31 mg, 126 ± 11 s, <i>P</i> < 0.05) and gauze group (123.94 ± 20.62 mg, 173 ± 4 s, <i>P</i> < 0.05). Notably, the Gel-OKGM-Borax hydrogel and SF-XG-PVA aerogel possessed good biocompatible, anti-inflammatory properties, and can promote skin wound healing. 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引用次数: 0
摘要
急性伤口表现出复杂的多样性,需要立即止血和量身定制的伤口护理策略。为了应对这些挑战,我们开发了基于蛋白质和多糖的水凝胶和气凝胶敷料,以适应不同临床损伤场景的治疗需求。本文以B型明胶(Gel)、氧化魔芋葡甘露聚糖(OKGM)和硼砂为原料合成了一种双交联水凝胶。我们还用冰模板法制备了丝素(SF)、黄原胶(XG)和聚乙烯醇(PVA)组成的定向网状结构气凝胶。研究表明,凝胶- okgm -硼砂水凝胶具有可调节的自愈能力、可注射性、生物降解性、微观结构和物理化学特性,显示出其治疗深度和不规则伤口的潜力。SF-XG-PVA气凝胶(单向冷冻,-20°C)具有良好的柔韧性、快速的吸水率(在112 s内达到平衡)和较慢的降解速度,表明其适用于浅表和平面伤口的治疗。凝胶- okgm -硼砂水凝胶止血效果(32.87±2.51 mg, 88±13 s, P < 0.05)优于SF-XG-PVA气凝胶(79.02±6.31 mg, 126±11 s, P < 0.05)和纱布组(123.94±20.62 mg, 173±4 s, P < 0.05)。值得注意的是,凝胶- okgm -硼砂水凝胶和SF-XG-PVA气凝胶具有良好的生物相容性、抗炎性能,并能促进皮肤伤口愈合。总的来说,这项研究强调了gel - okgm -硼砂水凝胶和SF-XG-PVA气凝胶作为伤口管理中有前途的生物材料的潜力。
Self-Healing Injectable Double Cross-Linked Hydrogels and Oriented Network-Structured Aerogels as Foodborne Macromolecular Wound Healing Systems
Acute wounds exhibit complex diversity, necessitating immediate hemostasis and tailored wound care strategies. To address these challenges, we developed protein- and polysaccharide-based hydrogel and aerogel dressings designed to adapt to the therapeutic demands of diverse clinical injury scenarios. Herein, a double cross-linked hydrogel based on type B gelatin (Gel), oxidized konjac glucomannan (OKGM), and borax was synthesized. We also fabricated an oriented network-structured aerogel composed of silk fibroin (SF), xanthan gum (XG), and poly(vinyl alcohol) (PVA) by ice templating. It has been demonstrated that the Gel-OKGM-Borax hydrogel possessed adjustable self-healing capabilities, injectability, biodegradability, and microstructural and physicochemical attributes, showing its potential for treating deep and irregular wounds. The SF-XG-PVA aerogel (unidirectional freezing, −20 °C) exhibited favorable flexibility, rapid water absorption rate (achieving equilibrium within 112 s), and slower degradation rate, indicating its suitability for the treatment of superficial and flat wounds. When applied in a hemostatic ability assay, the Gel-OKGM-Borax hydrogel elicited a hemostatic effect (32.87 ± 2.51 mg, 88 ± 13 s, P < 0.05), compared with the SF-XG-PVA aerogel (79.02 ± 6.31 mg, 126 ± 11 s, P < 0.05) and gauze group (123.94 ± 20.62 mg, 173 ± 4 s, P < 0.05). Notably, the Gel-OKGM-Borax hydrogel and SF-XG-PVA aerogel possessed good biocompatible, anti-inflammatory properties, and can promote skin wound healing. Overall, this study highlights the potential of the Gel-OKGM-Borax hydrogel and SF-XG-PVA aerogel as promising biomaterials in wound management.
期刊介绍:
ACS Applied Materials & Interfaces is a leading interdisciplinary journal that brings together chemists, engineers, physicists, and biologists to explore the development and utilization of newly-discovered materials and interfacial processes for specific applications. Our journal has experienced remarkable growth since its establishment in 2009, both in terms of the number of articles published and the impact of the research showcased. We are proud to foster a truly global community, with the majority of published articles originating from outside the United States, reflecting the rapid growth of applied research worldwide.