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同步细菌屏障与渗出液吸收:一种预防针道感染的新型双功能敷料策略。

Synchronous bacterial barrier and exudate absorption: A novel dual-function dressing strategy for pin-site infection prevention.

作者信息

Liang Bing, Zhou Sha, Xue Linyuan, Wang Qizun, Li Qianqian, Zheng Zihan, Ma Xinyue, Li Jiyixuan, Sun Li, Xing Kunyue, Wen Xiaobo, Wu Xiaolin, Zhang Miao, Xing Dongming

机构信息

Cancer Institute, The Affiliated Hospital of Qingdao University, Qingdao University, Qingdao, Shandong, 266071, China.

School of Basic Medicine, Qingdao University, Qingdao, Shandong, 266000, China.

出版信息

Mater Today Bio. 2025 May 8;32:101833. doi: 10.1016/j.mtbio.2025.101833. eCollection 2025 Jun.

Abstract

Open pin-site wounds, with infection rates of 11 %-100 %, pose significant clinical challenges, affecting millions globally and often leading to life-threatening complications. Current dressings fail to simultaneously block bacterial invasion and manage internal wound infection, necessitating innovative solutions. This study introduces PINSHIELD, a dual-functional dressing that externally seals wounds while efficiently managing exudate to mitigate pin-site infections (PSI). The external shell provides a physical barrier, while the embedded zinc alginate-polyurethane (ZAPU) layer combines active antibacterial properties with passive bacterial adhesion. The optimized ZAPU structure absorbs exudate and regulates the wound microenvironment, inhibiting bacterial proliferation and limiting infection spread. studies demonstrated that PINSHIELD inhibited and by 90 %, with a bacterial blocking efficiency exceeding 95 %, significantly outperforming traditional gauze. results showed reduced inflammation, bacterial loads, and abundance, while enhancing microbial diversity and enriching health-associated bacteria. Transcriptomic and metabolomic analyses revealed that PINSHIELD downregulated key virulence genes () and disrupted essential metabolic pathways (e.g., fatty acid biosynthesis, aminoacyl-tRNA synthesis), impairing bacterial adhesion, immune evasion, and biofilm formation. By synchronizing bacterial barrier formation with exudate management, PINSHIELD addresses the complex pathological needs of PSI, enhancing therapeutic efficacy and wound healing. This innovative design provides a versatile platform for infection control and personalized wound care, with broad implications for treating open wounds in orthopedic and other invasive device scenarios.

摘要

开放性针道伤口的感染率为11% - 100%,带来了重大的临床挑战,影响着全球数百万人,且常常导致危及生命的并发症。目前的敷料无法同时阻止细菌入侵和控制伤口内部感染,因此需要创新的解决方案。本研究介绍了PINSHIELD,一种双功能敷料,它能在外部封闭伤口,同时有效管理渗出液,以减轻针道感染(PSI)。外壳提供物理屏障,而嵌入的海藻酸锌 - 聚氨酯(ZAPU)层将主动抗菌特性与被动细菌黏附相结合。优化后的ZAPU结构吸收渗出液并调节伤口微环境,抑制细菌增殖并限制感染扩散。研究表明,PINSHIELD对[具体细菌名称1]和[具体细菌名称2]的抑制率达90%,细菌阻隔效率超过95%,显著优于传统纱布。结果显示炎症减轻、细菌载量降低、[具体微生物名称]丰度降低,同时微生物多样性增加,与健康相关的细菌增多。转录组学和代谢组学分析表明,PINSHIELD下调了关键的[细菌名称]毒力基因([具体基因名称]),并破坏了重要的代谢途径(如脂肪酸生物合成、氨酰 - tRNA合成),损害细菌黏附、免疫逃逸和生物膜形成。通过将细菌屏障形成与渗出液管理同步进行,PINSHIELD满足了PSI复杂的病理需求,提高了治疗效果和伤口愈合能力。这种创新设计为感染控制和个性化伤口护理提供了一个通用平台,对治疗骨科及其他侵入性器械场景中的开放性伤口具有广泛意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/96f7/12144502/3613ffdc30eb/ga1.jpg

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