以菌制菌:一种生物相容性活水凝胶贴片,用于抗击细菌感染和促进伤口愈合。

IF 9.4 1区 医学 Q1 ENGINEERING, BIOMEDICAL Acta Biomaterialia Pub Date : 2024-06-01 DOI:10.1016/j.actbio.2024.04.047
Zhengwei Xu, Xiaoxuan Yu, Fan Gao, Mingsong Zang, Liwei Huang, Wang Liu, Jiayun Xu, Shuangjiang Yu, Tingting Wang, Hongcheng Sun, Junqiu Liu
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引用次数: 0

摘要

细菌感染是全球健康面临的最严峻挑战之一,严重威胁着人类的安全。为了解决这个问题,我们将工程光热细菌(EM)、光敏剂(卟啉)和活性氧放大器(漆酶)共同嵌入蛋白水凝胶中,开发出了一种生物相容性工程活水凝胶贴片。值得注意的是,基因工程细菌能在体内表达黑色素颗粒,这使它们在接受近红外-II 激光(1064 纳米)照射时表现出光热反应。此外,细菌表面静电附着的四甲基吡啶卟啉(TMPyP)和蛋白凝胶中封装的漆酶(Lac)在可见光和木质素的作用下可分别产生剧毒的单线态氧(1O2)和羟基自由基(-OH)。有趣的是,工程细菌水凝胶贴片(EMTL@Gel)被成功应用于协同光热、光动力和化学动力疗法,能够有效治疗小鼠伤口的细菌感染并促进伤口愈合。这项工作展示了 "以菌治菌 "的概念,将细菌工程和材料工程结合到工程活水凝胶路径中,可协同提高治疗效果。意义说明:基因工程细菌在体内产生黑色素颗粒,表现出显著的光热特性。这些细菌与光敏剂(TMPyP)和活性氧放大器(漆酶)一起被整合到生物相容性蛋白质水凝胶贴片中。在可见光下,该贴片会产生有毒的单线态氧(1O2)和羟基自由基(-OH),在光热、光动力和化学动力疗法中表现出突出的协同效应,可有效治疗细菌感染并促进小鼠伤口愈合。
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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Fighting bacteria with bacteria: A biocompatible living hydrogel patch for combating bacterial infections and promoting wound healing

Bacterial infections are among the most critical global health challenges that seriously threaten the security of human. To address this issue, a biocompatible engineered living hydrogel patch was developed by co-embedding engineered photothermal bacteria (EM), photosensitizer (porphyrin) and reactive oxygen species amplifier (laccase) in a protein hydrogel. Remarkably, the genetice engineered bacteria can express melanin granules in vivo and this allows them to exhibit photothermal response upon being exposed to NIR-II laser (1064 nm) irradiation. Besides, electrostatically adhered tetramethylpyridinium porphyrin (TMPyP) on the bacterial surface and encapsulated laccase (Lac) in protein gel can generate highly toxic singlet oxygen (1O2) and hydroxyl radical (·OH) in the presence of visible light and lignin, respectively. Interestingly, the engineered bacteria hydrogel patch (EMTL@Gel) was successfully applied in synergistic photothermal, photodynamic and chemodynamic therapy, in which it was able to efficiently treat bacterial infection in mouse wounds and enhance wound healing. This work demonstrates the concept of “fighting bacteria with bacteria” combining bacterial engineering and material engineering into an engineered living hydrogel path that can synergistically boost the therapeutic outcome.

Statement of significance

Genetically engineered bacteria produce melanin granules in vivo, exhibiting remarkable photothermal properties. These bacteria, along with a photosensitizer (TMPyP) and a reactive oxygen species amplifier (laccase), are incorporated into a biocompatible protein hydrogel patch. Under visible light, the patch generates toxic singlet oxygen (1O2) and hydroxyl radical (·OH), demonstrates outstanding synergistic effects in photothermal, photodynamic, and chemodynamic therapy, effectively treating bacterial infections and promoting wound healing in mice.

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来源期刊
Acta Biomaterialia
Acta Biomaterialia 工程技术-材料科学:生物材料
CiteScore
16.80
自引率
3.10%
发文量
776
审稿时长
30 days
期刊介绍: Acta Biomaterialia is a monthly peer-reviewed scientific journal published by Elsevier. The journal was established in January 2005. The editor-in-chief is W.R. Wagner (University of Pittsburgh). The journal covers research in biomaterials science, including the interrelationship of biomaterial structure and function from macroscale to nanoscale. Topical coverage includes biomedical and biocompatible materials.
期刊最新文献
Editorial Board Editorial Board Erratum to “Anti-fibrotic and anti-stricture effects of biodegradable biliary stents braided with dexamethasone-impregnated sheath/core structured monofilaments” [Acta Biomaterialia. Volume 178, 1 April 2024, Pages 137-146] Corrigendum to “Optimizing the cell compatibility and mechanical properties in TiZrNbTa medium-entropy alloy/β-Ti composites through phase transformation” [Acta Biomaterialia. Volume 181, June 2024, Pages 469-482] Association between neural stem/progenitor cells and biomaterials in spinal cord injury therapies: A systematic review and network meta-analysis
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