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Tunc, A.

Publications and source records attributed to Tunc, A..

4 recordsLinked to original sources

Structural Insights into Native Intact Mycobacterium abscessus by Conventional and Ultrahigh-field solid-state NMR at 1.2 GHz

We present an ultrahigh-field magic-angle spinning (MAS) solid-state NMR (ssNMR) study to characterize intact nontuberculous mycobacteria (NTM) at the molecular level. Hydrated and dried whole-cell Mycobacterium abscessus samples were investigated by combining conventional high-field ssNMR at 750 MHz with ultrahigh-field ssNMR at 1.2 GHz and ultrafast MAS at 100 kHz. To improve sensitivity and enable multidimensional experiments, 13C/15N isotope labeling was performed after growth in synthetic cystic fibrosis medium (SCFM). We utilized 1D 13C and multidimensional 1H-13C and 13C-13C ssNMR experiments to characterize the chemical composition, dynamics, and structural organization of the M. abscessus cell envelope. The isotope-labeling efficiency was found to be non-uniform across different molecular classes, with high incorporation into polysaccharides and lower incorporation into lipid and peptide-associated signals. INEPT- and CP-based experiments selectively probed flexible and rigid fractions of the samples, revealing substantial differences in linewidth, dynamics, and sensitivity between hydrated and dried preparations. Conventional 750 MHz experiments provided high-resolution multidimensional spectra and enabled identification of distinct chemical environments associated with peptidoglycan, arabinogalactan, mycolic acids, lipids, and peptide-associated components. Ultrahigh-field ssNMR at 1.2 GHz combined with ultrafast MAS and 1H detection substantially improved spectral resolution and sensitivity in particular per mg of sample amount, allowing detection of weak and previously unresolved resonances, including polysaccharide and possible nucleic-acid-associated signals. Together, these results demonstrate that ultra-high-field and ultrafast-MAS ssNMR enables detailed characterization of intact NTM cell envelopes under near-native conditions and provides a framework for future molecular investigations of antimicrobial interactions.

microbiology↗

Fibrillation of the Pseudomonas Extracellular Functional Amyloid FapC is Controlled by Oligomeric State, Hierarchical Architecture and the C-Terminus

Functional amyloids enable bacteria to harness the exceptional stability of the amyloid fold while preventing uncontrolled aggregation. However, the molecular mechanisms that encode this balance between robustness and regulation remain incompletely understood. Here, we define how the Pseudomonas functional amyloid FapC, a secreted extracellular functional amyloid in bacterial biofilm, achieves controlled fibril assembly through a modular architecture and a short C-terminal regulatory element. Using controlled purification, modular truncation constructs, and quantitative kinetic assays, we reveal that full-length FapC fibrillation, comprising three irregular layers, is highly sensitive to its initial oligomeric state. Non-monomeric species exert opposing effects: high-molecular-weight assemblies accelerate aggregation via heterogeneous nucleation, while low-molecular-weight species potently inhibit productive assembly. In contrast, isolated single Layer 3, a structurally defined {beta}-solenoid segment, fibrillates rapidly with minimal lag and is largely insensitive to oligomeric heterogeneity, identifying it as a dominant amyloidogenic unit. Yet, despite its minimal architecture, Layer 3 still benefits from the presence of the C-terminal region, which enhances fibrillation rate and yield. Removal of this C-terminal segment delays nucleation, slows elongation, and reduces final fibril formation in both full-length and Layer 3 contexts, highlighting its role as a non-structural regulator of productive folding. Comparative studies show that hierarchical layering imposes kinetic checkpoints and expands regulatory potential, tuning the timing and efficiency of assembly. Together, our results establish that FapC encodes a fibrillation mechanism built on hierarchical architectural design and localized sequence-specific regulation. This suggests that precise control, rather than mere aggregation propensity, maybe the defining hallmark of functional amyloids, distinguishing them from their pathological counterparts.

biophysics↗

Elucidation of Radical Degradation in Native Biofilms by EPR Sheds Light on Bacterial Resistance and Efficient DNP Solid-state NMR

Bacterial biofilms exhibit enhanced antimicrobial resistance, yet the mechanisms determining molecular transport and reactivity within these complex communities remain poorly understood. Here, we combine electron paramagnetic resonance (EPR), solid-state NMR (ssNMR), and dynamic nuclear polarization (DNP) ssNMR to determine how native Pseudomonas fluorescens Pf0-1 colony biofilms regulate nitroxide radicals. EPR measurements reveal that radical reduction depends on biofilm morphology, hydration, and composition of extracellular matrix (ECM). Wild-type biofilms exhibit slower nitroxide reduction than planktonic cells, while isolated ECM and dehydrated biofilms show no radical reduction, indicating that bacterial cells primarily drive radical reduction. Complementary ssNMR measurements identify polysaccharides and lipids within the ECM as primary interaction sites for nitroxide radicals. DNP-enhanced ssNMR further reveals compositional differences across biofilm morphologies, with increasingly polysaccharide-rich ECM environments correlating with slower reduction kinetics. These findings support a mechanism in which the ECM acts as a diffusion barrier and selective interaction region for nitroxide radicals to regulate cellular penetration. This work showcases an integrated magnetic resonance approach that provides molecular insight into how biofilm structure determines the fate of toxic redox-active small molecules. We also set the stage for high-sensitivity measurements of structure-function relationships in these medically relevant assemblies.

biophysics↗

Structural Basis of Pseudomonas FapC Biofilm-Forming Functional Amyloid Formation

Biofilm-protected Pseudomonas aeruginosa causes chronic infections that are difficult to treat. FapC, the major biofilm forming functional-amyloid in Pseudomonas, is essential for biofilm integrity, yet its structural details remain unresolved. Using an integrative structural biology approach, we combine solution NMR-based structural ensemble of unfolded monomeric FapC, a [~]3.3 [A] resolution CryoEM density map of FapC fibril, and all-atom MD simulations to capture transition from unfolded to folded monomer to fibrillar fold, providing a complete structural view of FapC biogenesis. CryoEM reveals a unique triple-layer {beta}-solenoid cross-{beta} fibril composed of a single protofilament. MD simulations initiated from monomeric and fibrillar FapC mapped structural transitions, offering mechanistic insights into amyloid assembly and disassembly. Understanding FapC reveals how Pseudomonas exploits functional amyloids for biofilm formation and establishes a structural and mechanistic foundation for developing therapeutics targeting biofilm-related infection and antimicrobial resistance.

microbiology↗