Huiyuan Bai*, Zihan Ding, Maorong Jiang and Dengbing Yao*,
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引用次数: 0
摘要
细菌感染的皮肤伤口是一个严重的全球医疗保健问题。细菌入侵和不充分的炎症反应是伤口愈合过程中的主要障碍。为了缓解这些问题,研究人员将硝普钠和铁铜纳米粒子加入到由高碘酸钠氧化软骨素硫酸盐、明胶和硼砂制成的水凝胶网络中,制备了一种多功能纳米酶水凝胶敷料(FeCu/S/OxC/G)。由于存在不同类型的动态键(包括席夫碱键和氢键),该水凝胶具有自愈合能力、良好的注射性和出色的粘合性能。体外实验结果表明,FeCu/S/OxC/G + H2O2 + NIR 组比其他组具有更高的金黄色葡萄球菌灭活率和更少的生物膜,这表明了类 POD 活性、一氧化氮和光热疗法的综合抗菌效果。体内实验结果证实,FeCu/S/OxC/G 水凝胶配合近红外激光照射,可通过促进表皮形成、加速胶原沉积和减少炎症因子的表达,最大限度地提高金黄色葡萄球菌感染小鼠的伤口愈合率。这项研究为伤口愈合提供了一种具有抗菌和抗炎双重功效的治疗策略。
Self-Healing Nanozyme Hydrogel with Nitric Oxide Production and Photothermal Effect to Promote Wound Healing
Bacterial-infected skin wounds are a severe global healthcare problem. Bacterial invasion and an immoderate inflammatory response are major obstacles in the wound healing process. To mitigate these issues, a multifunctional nanozyme hydrogel dressing (FeCu/S/OxC/G) was prepared by loading sodium nitroprusside and iron–copper nanoparticles into a hydrogel network that was made of sodium periodate oxidized chondroitin sulfate, gelatin, and borax. Owing to different types of dynamic bonds, including Schiff base bonds and hydrogen bonds, the hydrogel showed self-healing ability, good injectability, and excellent adhesive performance. In vitro results demonstrated that the FeCu/S/OxC/G + H2O2 + NIR group exhibited a higher inactivation rate of Staphylococcus aureus and fewer biofilms than other groups, indicating the combined antibacterial effects of POD-like activity, nitric oxide, and photothermal therapy. In vivo results verified that FeCu/S/OxC/G hydrogel together with NIR laser irradiation could maximally increase the wound healing rate of S. aureus-infected mice via promoting epidermal formation, accelerating collagen deposition, and reducing the expression of inflammatory factors. This study provided a promising therapeutic strategy with combined antibacterial and anti-inflammatory effects for wound healing.
期刊介绍:
ACS Applied Nano Materials is an interdisciplinary journal publishing original research covering all aspects of engineering, chemistry, physics and biology relevant to applications of nanomaterials. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrate knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important applications of nanomaterials.