A photodriven nano-extinguisher alleviates acute bacterial infections via toll-like receptor 4-regulated immune response.

IF 9.6
Jie Li, Ji- Yu Che, Hong- Yu Wang, Rui-Yao Wang, Si-Yuan Huang, Zhong-Ming Wu, Xin-Ge Zhang
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Abstract

Pattern recognition receptors on immune cells play essential roles in detecting pathogen-associated molecular patterns and initiating downstream immune defense cascades. Toll-like receptor-4, a key member of the PRR family, regulates macrophage-mediated innate immune responses; however, its dysregulation due to excessive activation often exacerbates inflammatory processes. Herein, we report a Toll-like receptor-4-targeted nano-extinguisher designed to combat acute pneumonia caused by multidrug-resistant Pseudomonas aeruginosa infection. This innovative nanoplatform integrates bacterial capture ligands, a photothermal agent, and a Toll-like receptor-4 signaling inhibitor. Upon near-infrared light irradiation, the nano-extinguisher generates localized hyperthermia, leading to bacterial death through disruption of membrane integrity. Moreover, the thermal-triggered release of the Toll-like receptor-4 signaling inhibitor enables dual immunomodulation by simultaneously regulating macrophage polarization and scavenging reactive oxygen species. The nano-extinguisher significantly alleviated the pathological progression of infection-induced acute pneumonia in our experiments. By combining photothermal antibacterial activity with spatiotemporal immunomodulation, this nanoengineered system offers a promising translational strategy for the treatment of acute bacterial infections and concurrent mitigation of Toll-like receptor-4-mediated immunopathology. STATEMENT OF SIGNIFICANCE: TLR4, which is crucial for initiating innate immunity via pathogen detection, often exacerbates inflammation when hyperactivated. We developed TLR-4-targeted nano-extinguishers to combat multidrug-resistant Pseudomonas aeruginosa-induced pneumonia. This system integrates bacterial capturing, photothermal therapy, and TLR-4 inhibition. Photo-driven localized hyperthermia disrupts bacterial membranes while thermally releasing the inhibitor, thereby achieving simultaneous macrophage polarization modulation and reactive oxygen species scavenging, effectively mitigating infection-induced pneumonia. By integrating precision photothermal sterilization with spatiotemporal immunoregulation, our nanoengineered strategy addresses both bacterial eradication and TLR-4-mediated immunopathology, offering translational potential for the treatment of acute infections.

光驱动的纳米灭火器通过toll样受体4调节的免疫反应减轻急性细菌感染。
免疫细胞上的模式识别受体在检测病原体相关分子模式和启动下游免疫防御级联反应中起着至关重要的作用。toll样受体-4是PRR家族的关键成员,调控巨噬细胞介导的先天免疫反应;然而,过度激活导致的失调往往会加剧炎症过程。在此,我们报告了一种toll样受体-4靶向纳米灭火剂,旨在对抗由多重耐药铜绿假单胞菌感染引起的急性肺炎。这种创新的纳米平台集成了细菌捕获配体、光热剂和toll样受体-4信号抑制剂。在近红外光照射下,纳米灭火剂产生局部高温,通过破坏膜完整性导致细菌死亡。此外,toll样受体-4信号抑制剂的热触发释放通过同时调节巨噬细胞极化和清除活性氧来实现双重免疫调节。在我们的实验中,纳米灭火剂明显缓解了感染引起的急性肺炎的病理进展。通过将光热抗菌活性与时空免疫调节相结合,该纳米工程系统为治疗急性细菌感染和同时缓解toll样受体-4介导的免疫病理提供了一种有前途的转化策略。意义声明:TLR4对于通过病原体检测启动先天免疫至关重要,当TLR4过度激活时,往往会加剧炎症。我们开发了tlr -4靶向纳米灭火器,以对抗多药耐药铜绿假单胞菌引起的肺炎。该系统集成了细菌捕获、光热治疗和TLR-4抑制。光驱动的局部热疗在热释放抑制剂的同时破坏细菌膜,从而同时实现巨噬细胞极化调节和活性氧清除,有效减轻感染诱导的肺炎。通过将精确光热灭菌与时空免疫调节相结合,我们的纳米工程策略解决了细菌根除和tlr -4介导的免疫病理,为急性感染的治疗提供了转化潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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