葡萄糖氧化酶多模态协同抗菌应用的成就与挑战

IF 6.9 1区 生物学 Q1 MICROBIOLOGY
Rui-nan Zhao , Yi-yin Ke , Hui-yan Sun , Chunshan Quan , Qingsong Xu , Jun Li , Jing-qi Guan , Yan-mei Zhang
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引用次数: 0

摘要

葡萄糖氧化酶(GOx)具有独特的催化特性和固有的生物相容性,能有效地将内源性和外源性葡萄糖与氧气(O2)氧化成葡萄糖酸和过氧化氢(H2O2)。因此,基于 GOx 的催化化学为设计和构建多模式协同抗菌系统提供了新的可能性。消耗葡萄糖会阻断基本的能量供应,从而永久性地降低细菌细胞的新陈代谢,抑制其生长和存活。此外,葡萄糖酸的产生可降低细菌感染微环境中的 pH 值,通过增强芬顿或芬顿类反应促进 H2O2 生成羟基自由基(∙OH),并触发药物的 pH 值响应释放。此外,原位生成的 H2O2 可避免添加外源过氧化氢。因此,通过将 GOx 引导的级联反应与化学动力学疗法(CDT)、缺氧激活原药、光敏剂和刺激响应型药物释放等其他治疗方法相结合,设计基于 GOx 的多模式抗菌协同疗法成为可能。与单一治疗模式相比,这种多模式策略有望取得更好的治疗效果。这篇教程综述重点介绍了 GOx 指导的多模式协同抗菌系统的最新进展,重点是设计理念和构建策略。文中还讨论了推进基于 GOx 的多模式协同抗菌疗法的当前挑战和未来前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Achievements and challenges in glucose oxidase-instructed multimodal synergistic antibacterial applications
Glucose oxidase (GOx) with unique catalytic properties and inherent biocompatibility can effectively oxidize both endogenous and exogenous glucose with oxygen (O2) into gluconic acid and hydrogen peroxide (H2O2). Accordingly, the GOx-based catalytic chemistry offers new possibilities for designing and constructing multimodal synergistic antibacterial systems. The consumption of glucose permanently downregulates bacterial cell metabolism by blocking essential energy supplies, inhibiting their growth and survival. Additionally, the production of gluconic acid could downregulates the pH within the bacterial infection microenvironment, enhancing the production of hydroxyl radicals (∙OH) from H2O2 via enhanced Fenton or Fendon-like reactions and triggering the pH-responsive release of drugs. Furthermore, the generated H2O2 in situ avoids the addition of exogenous hydrogen peroxide. Therefore, it is possible to design GOx-based multimodal antibacterial synergistic therapies by combining GOx-instructed cascade reactions with other therapeutic approaches such as chemodynamic therapies (CDT), hypoxia-activated prodrugs, photosensitizers, and stimuli-responsive drug release. Such multimodal strategies are expected to exhibit better therapeutic effects than single therapeutic modes. This tutorial review highlights recent advancements in GOx-instructed multimodal synergistic antibacterial systems, focusing on design philosophy and construction strategies. Current challenges and future prospects for advancing GOx-based multimodal antibacterial synergistic therapies are discussed.
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来源期刊
Microbiological research
Microbiological research 生物-微生物学
CiteScore
10.90
自引率
6.00%
发文量
249
审稿时长
29 days
期刊介绍: Microbiological Research is devoted to publishing reports on prokaryotic and eukaryotic microorganisms such as yeasts, fungi, bacteria, archaea, and protozoa. Research on interactions between pathogenic microorganisms and their environment or hosts are also covered.
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