Collaboration in Contradiction: Self-Adaptive Synergistic ROS Generation and Scavenge Balancing Strategies Used for the Infected Wounds Treatment

IF 9.6 2区 医学 Q1 ENGINEERING, BIOMEDICAL Advanced Healthcare Materials Pub Date : 2024-10-21 DOI:10.1002/adhm.202402579
Mengtian Wang, Yangkun Liu, Shuqing Yang, Xuanbing Wang, Qindan Duan, Jiankai Liu, Xudong Tan, Linjing Long, Siyi Liu, Yawen Xiao, Zhao Li, Changhao Han, Yaoxing Yi, Yuchan Zhang, Guixue Wang, Guangchao Zang
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Abstract

The rational utilization of ROS is key to treating infected wounds. Exogenous ROS can destroy bacterial structures, quickly kill bacteria, and inhibit secondary infections. However, excess ROS at the wound will cause a secondary inflammatory response. Acute infections exacerbate this damage by increasing endogenous ROS, complicating the maintenance of ROS homeostasis. Therefore, regulating the balance of ROS production and scavenging in wounds has emerged as a promising strategy for wound treatment. Conventional ROS balancing platforms are mostly based on the “ all for one” strategy of functional superposition and lack self-adaptability and integration. To subvert this conventional strategy, this study proposes a “one for all” self-adaptive integrated photodynamic therapy (PDT)-antioxidant model to actively regulate the ROS balance. A gelatin-hyaluronic acid hydrogel embedded with Se-modified cerium dioxide nanoparticles (Gel-HA-Se@CeO2 NPs) is designed for treating infected wounds. The Se@CeO2 NPs serve both as nanoenzymes and photosensitizers(PS). As nanoenzymes, they exhibit catalase and superoxide dismutase activities, converting hydrogen peroxide and superoxide anions into oxygen. As a PS, it synergizes with oxygen under NIR irradiation to rapidly produce singlet oxygen. Additionally, Se modification enhances the PDT effects by disrupting bacterial antioxidant systems. In vitro and in vivo experiments revealed that the ROS balance platform polarizes M1-type macrophages to M2-type macrophages, altering the wound microenvironment from proinflammatory to prohealing. RNA sequencing revealed that this hydrogel accelerated the reconstruction of the vascular network of the wound by activating the PI3K/AKT pathway and increasing VEGF secretion.This strategy is believed to be beneficial not only for infected wounds but also for treating other conditions that involve the regulation of reactive oxygen species, such as tumors and bacterial infections.

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矛盾中的合作:用于感染性伤口治疗的自适应协同 ROS 生成和清除平衡策略。
合理利用 ROS 是治疗感染伤口的关键。外源性 ROS 可以破坏细菌结构,快速杀死细菌,抑制二次感染。然而,伤口处过量的 ROS 会引起继发性炎症反应。急性感染会增加内源性 ROS,从而加剧这种损伤,使 ROS 平衡的维持变得更加复杂。因此,调节伤口中 ROS 生成和清除的平衡已成为一种很有前景的伤口治疗策略。传统的 ROS 平衡平台大多基于功能叠加的 "一网打尽 "策略,缺乏自我适应性和整合性。为了颠覆这一传统策略,本研究提出了一种 "一举多得 "的自适应集成光动力疗法(PDT)-抗氧化剂模型,以主动调节 ROS 平衡。本研究设计了一种内嵌 Se 改性二氧化铈纳米粒子(Gel-HA-Se@CeO2 NPs)的明胶-透明质酸水凝胶,用于治疗感染伤口。Se@CeO2 NPs 既是纳米酶,又是光敏剂(PS)。作为纳米酶,它们具有过氧化氢酶和超氧化物歧化酶活性,能将过氧化氢和超氧阴离子转化为氧气。作为一种 PS,它能在近红外照射下与氧气协同作用,迅速产生单线态氧。此外,硒修饰还能破坏细菌的抗氧化系统,从而增强光导放疗的效果。体外和体内实验显示,ROS 平衡平台可将 M1 型巨噬细胞极化为 M2 型巨噬细胞,从而改变伤口微环境,使其从促炎性转变为促愈合性。RNA 测序显示,这种水凝胶通过激活 PI3K/AKT 通路和增加血管内皮生长因子的分泌,加速了伤口血管网络的重建。据信,这种策略不仅有益于受感染的伤口,也有益于治疗涉及活性氧调节的其他病症,如肿瘤和细菌感染。
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来源期刊
Advanced Healthcare Materials
Advanced Healthcare Materials 工程技术-生物材料
CiteScore
14.40
自引率
3.00%
发文量
600
审稿时长
1.8 months
期刊介绍: Advanced Healthcare Materials, a distinguished member of the esteemed Advanced portfolio, has been dedicated to disseminating cutting-edge research on materials, devices, and technologies for enhancing human well-being for over ten years. As a comprehensive journal, it encompasses a wide range of disciplines such as biomaterials, biointerfaces, nanomedicine and nanotechnology, tissue engineering, and regenerative medicine.
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