IF 5.7 3区 生物学 Q1 BIOCHEMICAL RESEARCH METHODS
Hyeonseo Park, Tejal V Patil, Jieun Lee, Hojin Kim, Seong-Jun Cho, Ki-Taek Lim
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引用次数: 0

摘要

抗生素耐药性的增加使细菌感染成为一个长期的全球健康问题。尤其是细菌分泌的胞外高分子物质(EPS)限制了传统抗生素的有效性,使得清除生物膜变得十分困难。为此,我们在纳米金刚石(ND)表面涂上聚多巴胺(PDA),制成了 ND@PDA 纳米粒子。然后将这些纳米颗粒与聚乙烯醇结合,制成 PVA/ND@PDA 纳米纤维支架,从而形成了一个具有增强光热、抗菌和抗生物膜特性的创新平台。暴露在近红外(NIR)光下时,支架表现出显著的光热活性、氧化应激和有效破坏关键细菌成分,如生物膜、细菌膜和蛋白质。此外,PDA 中的儿茶酚基团在纳米纤维表面提供了强大的细胞粘附性和高生物相容性。我们的研究提出了一种平台,它不仅能有效解决抗生素耐药性感染问题,还能在毒性最小的情况下实现可控抗菌作用,从而促进伤口愈合疗法的发展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
NIR-activated catechol-functionalized nanodiamond nanofibers for accelerating on-demand MRSA and E. coli biofilm eradication.

The rise of antibiotic resistance has made bacterial infections a persistent global health issue. In particular, extracellular polymeric substances (EPS) secreted by bacteria limit the effectiveness of conventional antibiotics, making biofilm removal challenging. To address this, we created ND@PDA nanoparticles by coating the surface of nanodiamonds (ND) with polydopamine (PDA). These nanoparticles were then integrated into polyvinyl alcohol to fabricate PVA/ND@PDA nanofiber scaffolds, resulting in an innovative platform with enhanced photothermal, antibacterial and antibiofilm properties. Upon exposure to near-infrared (NIR) light, the scaffolds exhibited a significant photothermal activity, oxidative stress and effectively damaging key bacterial components, such as biofilm, bacterial membranes, and proteins. Additionally, the catechol groups in PDA provided strong cell adhesion and high biocompatibility on the nanofiber surface. Our research proposes a platform that not only effectively addresses antibiotic-resistant infections but also contributes to advancements in wound healing therapies by enabling controlled antibacterial action with minimal toxicity.

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来源期刊
Journal of Biological Engineering
Journal of Biological Engineering BIOCHEMICAL RESEARCH METHODS-BIOTECHNOLOGY & APPLIED MICROBIOLOGY
CiteScore
7.10
自引率
1.80%
发文量
32
审稿时长
17 weeks
期刊介绍: Biological engineering is an emerging discipline that encompasses engineering theory and practice connected to and derived from the science of biology, just as mechanical engineering and electrical engineering are rooted in physics and chemical engineering in chemistry. Topical areas include, but are not limited to: Synthetic biology and cellular design Biomolecular, cellular and tissue engineering Bioproduction and metabolic engineering Biosensors Ecological and environmental engineering Biological engineering education and the biodesign process As the official journal of the Institute of Biological Engineering, Journal of Biological Engineering provides a home for the continuum from biological information science, molecules and cells, product formation, wastes and remediation, and educational advances in curriculum content and pedagogy at the undergraduate and graduate-levels. Manuscripts should explore commonalities with other fields of application by providing some discussion of the broader context of the work and how it connects to other areas within the field.
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