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Biology subjects

Hansen, K. H.

Publications and source records attributed to Hansen, K. H..

3 recordsLinked to original sources

High-Sensitivity Analysis of Native Bacterial Biofilms Using Dynamic Nuclear Polarization-Enhanced Solid-State NMR

Bacterial biofilms cause persistent infections that are difficult to treat and contribute greatly to antimicrobial resistance. However, high-resolution structural information on native bacterial biofilms remain very limited. This limitation is primarily due to methodological constraints associated with analyzing complex native samples. Although solid-state NMR (ssNMR) is a promising method in this regard, its conventional applications typically suffer from sensitivity limitations, particularly for unlabeled native samples. Through the use of Dynamic Nuclear Polarization (DNP), we applied sensitivity enhanced ssNMR to characterize native Pseudomonas fluorescens colony biofilms. The increased ssNMR sensitivity by DNP enabled ultrafast structural characterization of the biofilm samples without isotope-labelling, and chemical or physical modification. We collected 1D 13C and 15N, and 2D 1H-13C, 1H-15N and 13C-13C ssNMR spectra within seconds/minutes or hours, respectively which enabled us to identify biofilm components as polysaccharides, proteins, and eDNA effectively. This study represents the first application of ultrasensitive DNP ssNMR to characterize a native bacterial biofilm and expands the technical scope of ssNMR towards obtaining insights into the composition and structure of a wide array of in vitro and ex vivo biofilm applications. Such versatility should greatly boost efforts to develop structure-guided approaches for combating infections caused by biofilm-forming microbes.

microbiology↗

High-resolution 2D Solid-State NMR provides insights into Nontuberculous Mycobacteria

We present a high-resolution magic-angle spinning (MAS) solid-state NMR (ssNMR) study to characterize native nontuberculous mycobacteria (NTM). We studied two different NTM strains, Mycobacterium smegmatis, a model, non-pathogenic strain, and Mycobacterium abscessus, an emerging and important human pathogen. Native hydrated NTM samples were studied at natural abundance without isotope-labelling and any chemical or physical modification. We utilized 1D 13C and 2D 1H-13C ssNMR spectra and peak deconvolution to identify NTM cell-wall chemical sites. More than [~]100 distinct 13C signals were identified in the ssNMR spectra. The signals originating from both the flexible and rigid fractions of the native bacteria samples were selectively analyzed by utilizing either CP or INEPT based 13C ssNMR spectra. CP buildup curves provide insights into the dynamical similarity of the cell-wall components for NTM strains. Signals from peptidoglycan, arabinogalactan and mycolic acid were identified. We also provide tentative assignments for [~]30 polysaccharides by using well resolved 1H/13C chemical shifts from the 2D INEPT-based 1H-13C ssNMR spectrum. As an orthogonal way of characterizing the bacteria, electron microscopy (EM) was used to provide spatial characterization. ssNMR and EM data suggest that M. abscessus cell-wall is composed of a smaller peptidoglycan layer which is more flexible compared to M. smegmatis, which may be related to its higher pathogenicity. Here in this work, we used high-resolution 2D ssNMR first time to characterize native NTM strains and identified chemical sites. These results will aid the development of structure-based approaches to combat NTM infections.

microbiology↗

Initial Steps of Chaperone-Aided Fibrillation of Pseudomonas aeruginosa Biofilm Forming Functional Amyloid FapC

Functional bacterial amyloids (FuBA) play a crucial role in the formation of biofilms, which are mediating chronic infections and contribute to antimicrobial resistance. This study focuses on the FapC protein from Pseudomonas, a major contributor to biofilm formation. We investigate the initial steps of FapC amyloid formation and the impact of the chaperone-like protein FapA on this process. Using solution NMR spectroscopy, we show that both FapC and FapA, which are part of the same biofilm-forming protein operon, are intrinsically disordered proteins (IDPs) in their soluble monomeric state. These SSPs were determined and compared to the Alphafold models. We further demonstrate that the IDP chaperone FapA interacts with FapC and significantly slows down the formation of FapC fibrils, while maintaining the fibril morphology unchanged. Our NMR titration experiments reveal that [~]18% of the resonances show FapA induced chemical shift perturbations (CPSs) which has not been previously observed, the largest being for A82, N201, C237, C240, A241 and G245 residues. These sites may suggest a specific interaction site and/or hotspots of fibrillation inhibition/control interface at the R1/L2 and L2/R3 transition areas and at the C-terminus of FapC. Remarkably, [~]90% of FapA NMR signals exhibit substantial CSPs upon titration with FapC. A temperature dependent effect of FapA was observed on FapC by ThT and NMR experiments. This study provides a detailed understanding of the interaction between the chaperone/chaperone-like FapA and the functional amyloid protein FapC, shedding light on the regulation and slowing down of amyloid formation. Our findings have important implications for the development of therapeutic strategies targeting biofilms and associated infections, leveraging these structural and mechanistic insights.

microbiology↗