Joint Centre of Translational Medicine, The First Affiliated Hospital of Wenzhou Medical University, Wenzhou 325000, China.
Zhejiang Engineering Research Center for Tissue Repair Materials, Wenzhou Institute, University of Chinese Academy of Sciences, Wenzhou 325000, China.
ACS Appl Mater Interfaces. 2024 Jan 10;16(1):95-110. doi: 10.1021/acsami.3c12997. Epub 2023 Dec 29.
Nanozymes, emerging nanomaterials for wound healing, exhibit enzyme-like activity to modulate the levels of reactive oxygen species (ROS) at wound sites. Yet, the solo regulation of endogenous ROS by nanozymes often falls short, particularly in chronic refractory wounds with complex and variable pathological microenvironments. In this study, we report the development of a multifunctional wound dressing integrating a conventional alginate (Alg) hydrogel with a newly developed biodegradable copper hydrogen phosphate (CuP) nanozyme, which possesses good near-infrared (NIR) photothermal conversion capabilities, sustained Cu ion release ability, and pH-responsive peroxidase/catalase-mimetic catalytic activity. When examining acute infected wounds characterized by a low pH environment, the engineered Alg/CuP composite hydrogels demonstrated high bacterial eradication efficacy against both planktonic bacteria and biofilms, attributed to the combined action of catalytically generated hydroxyl radicals and the sustained release of Cu ions. In contrast, when applied to chronic diabetic wounds, which typically have a high pH environment, these composite hydrogels exhibit significant angiogenic performance. This is driven by the provision of catalytically generated dissolved oxygen and a beneficial supplement of Cu ions released from the degradable CuP nanozyme. Further, a mild thermal effect induced by NIR irradiation amplifies the catalytic activities and bioactivity of Cu ions, thereby enhancing the healing process of both infected and diabetic wounds. Our study validates that the synergistic integration of photothermal effects, catalytic activity, and released Cu ions can concurrently yield high antibacterial efficiency and tissue regenerative activity, rendering it highly promising for various clinical applications in wound healing.
纳米酶作为新兴的用于伤口愈合的纳米材料,具有类似酶的活性,可以调节伤口部位活性氧(ROS)的水平。然而,纳米酶对内源性 ROS 的单独调节往往不够,特别是在慢性难治性伤口中,其病理微环境复杂且多变。在本研究中,我们报告了一种多功能伤口敷料的开发,该敷料将传统的海藻酸钠(Alg)水凝胶与新开发的可生物降解的磷酸铜(CuP)纳米酶结合在一起,该纳米酶具有良好的近红外(NIR)光热转换能力、持续的 Cu 离子释放能力以及 pH 响应过氧化物酶/过氧化氢酶模拟催化活性。在研究具有低 pH 环境的急性感染性伤口时,工程化的 Alg/CuP 复合水凝胶对浮游菌和生物膜均表现出高效的杀菌效果,这归因于催化生成的羟基自由基和持续释放的 Cu 离子的协同作用。相比之下,当应用于通常具有高 pH 环境的慢性糖尿病伤口时,这些复合水凝胶表现出显著的血管生成性能。这是由催化生成的溶解氧和可降解的 CuP 纳米酶释放的有益的 Cu 离子补充所驱动的。此外,NIR 照射引起的温和热效应放大了 Cu 离子的催化活性和生物活性,从而增强了感染性和糖尿病性伤口的愈合过程。我们的研究验证了光热效应、催化活性和释放的 Cu 离子的协同集成可以同时产生高效的抗菌效率和组织再生活性,使其在伤口愈合的各种临床应用中具有很高的应用前景。