Stomatological Hospital, School of Stomatology, Southern Medical University, Guangzhou, 510280, China.
Stomatology Center, Shunde Hospital, Southern Medical University (The First People's Hospital of Shunde), Foshan, 528399, China.
Adv Sci (Weinh). 2024 Apr;11(15):e2306070. doi: 10.1002/advs.202306070. Epub 2024 Feb 13.
Anti-virulence therapy that interferes with bacterial communication, known as "quorum sensing (QS)", is a promising strategy for circumventing bacterial resistance. Using nanomaterials to regulate bacterial QS in anti-virulence therapy has attracted much attention, which is mainly attributed to unique physicochemical properties and excellent designability of nanomaterials. However, bacterial QS is a dynamic and multistep process, and there are significant differences in the specific regulatory mechanisms and related influencing factors of nanomaterials in different steps of the QS process. An in-depth understanding of the specific regulatory mechanisms and related influencing factors of nanomaterials in each step can significantly optimize QS regulatory activity and enhance the development of novel nanomaterials with better comprehensive performance. Therefore, this review focuses on the mechanisms by which nanomaterials regulate bacterial QS in the signal supply (including signal synthesis, secretion, and accumulation) and signal transduction cascade (including signal perception and response) processes. Moreover, based on the two key influencing factors (i.e., the nanomaterial itself and the environment), optimization strategies to enhance the QS regulatory activity are comprehensively summarized. Collectively, applying nanomaterials to regulate bacterial QS is a promising strategy for anti-virulence therapy. This review provides reference and inspiration for further research on the anti-virulence application of nanomaterials.
抗毒理学治疗,即干扰细菌通讯的“群体感应 (QS)”,是一种规避细菌耐药性的有前途的策略。利用纳米材料来调节抗毒理学治疗中的细菌 QS 引起了广泛关注,这主要归因于纳米材料独特的物理化学性质和出色的可设计性。然而,细菌 QS 是一个动态的多步骤过程,纳米材料在 QS 过程的不同步骤中的具体调节机制和相关影响因素存在显著差异。深入了解纳米材料在每个步骤中的具体调节机制和相关影响因素,可以显著优化 QS 调节活性,并增强新型纳米材料的综合性能。因此,本综述重点关注纳米材料在信号供应(包括信号合成、分泌和积累)和信号转导级联(包括信号感知和响应)过程中调节细菌 QS 的机制。此外,基于两个关键影响因素(即纳米材料本身和环境),全面总结了增强 QS 调节活性的优化策略。总之,应用纳米材料来调节细菌 QS 是一种有前途的抗毒理学治疗策略。本综述为进一步研究纳米材料的抗毒理学应用提供了参考和启示。