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通过动态核极化增强固态核磁共振对天然细菌生物膜进行超灵敏表征。

Ultrasensitive Characterization of Native Bacterial Biofilms via Dynamic Nuclear Polarization-Enhanced Solid-State NMR.

作者信息

Byeon Chang-Hyeock, Kinney Ted, Saricayir Hakan, Holst Hansen Kasper, Scott Faith J, Srinivasa Sadhana, Wells Meghan K, Mentink-Vigier Frederic, Kim Wook, Akbey Ümit

机构信息

Department of Structural Biology, School of Medicine, University of Pittsburgh, Pittsburgh, PA, 15261, USA.

Department of Biomedicine, Aarhus University, Aarhus, 8000, Denmark.

出版信息

Angew Chem Int Ed Engl. 2025 Mar 17;64(12):e202418146. doi: 10.1002/anie.202418146. Epub 2025 Jan 15.

Abstract

Bacterial biofilms are major contributors to persistent infections and antimicrobial resistance, posing significant challenges to treatment. However, obtaining high-resolution structural information on native bacterial biofilms has remained elusive due to the methodological limitations associated with analyzing complex biological samples. Solid-state NMR (ssNMR) has shown promise in this regard, but its conventional application is hindered by sensitivity constraints for unlabeled samples. In this study, we utilized high-sensitivity Dynamic Nuclear Polarization (DNP) ssNMR to characterize native Pseudomonas fluorescens colony biofilms. The ~75-fold sensitivity enhancement provided by DNP enabled structural characterization without isotope labeling or chemical/physical modification. We successfully collected 1D C/N, and 2D H-C, H-N and C-C ssNMR spectra within seconds, minutes or hours, facilitating the identification and quantification of biofilm extracellular matrix (ECM) components. Additionally, DNP ssNMR allowed quantitative detection of both flexible and rigid biofilm components by favorable freezing conditions. This study represents the first application of ultrasensitive DNP ssNMR to characterize a native bacterial biofilm, significantly expanding the capabilities of ssNMR for analyzing the composition and structure of a wide array of in vitro and ex vivo biofilms. The versatility of this approach will accelerate structure-guided efforts to combat infections caused by biofilm-forming microbes.

摘要

细菌生物膜是持续性感染和抗菌药物耐药性的主要促成因素,给治疗带来了重大挑战。然而,由于与分析复杂生物样品相关的方法学限制,获取天然细菌生物膜的高分辨率结构信息仍然难以实现。固态核磁共振(ssNMR)在这方面已显示出前景,但其常规应用受到未标记样品灵敏度限制的阻碍。在本研究中,我们利用高灵敏度动态核极化(DNP)ssNMR对天然荧光假单胞菌菌落生物膜进行表征。DNP提供的约75倍灵敏度增强使得无需同位素标记或化学/物理修饰即可进行结构表征。我们在数秒、数分钟或数小时内成功采集了一维碳/氮以及二维氢-碳、氢-氮和碳-碳ssNMR光谱,便于鉴定和定量生物膜细胞外基质(ECM)成分。此外,通过有利的冷冻条件,DNP ssNMR能够对生物膜的柔性和刚性成分进行定量检测。本研究代表了超灵敏DNP ssNMR首次应用于表征天然细菌生物膜,显著扩展了ssNMR分析各种体外和体内生物膜的组成和结构的能力。这种方法的多功能性将加速以结构为导向的对抗由形成生物膜的微生物引起的感染的努力。

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