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Dickwella Widanage, M. C.

Publications and source records attributed to Dickwella Widanage, M. C..

6 recordsLinked to original sources

MAS cryoprobe enhances solid-state NMR signals of α-synuclein fibrils

Solid-state NMR spectroscopy is increasingly applied to structural and dynamics studies across a broad range of chemical, material, and biological systems. Although sensitivity has traditionally been a major limitation, the recently developed MAS cryoprobe has been shown to substantially overcome this challenge. Its ability to enhance the signal-to-noise (S/N) ratio without requiring sample freezing makes it particularly attractive for investigating non-isotropic systems, including soft materials (e.g., hydrogels), semi-solids (e.g., membrane mimetics) and rigid solids (e.g., amyloid fibrils). In this study, we report on the enhanced sensitivity of solid-state NMR experiments on -synuclein fibrils using a MAS cryoprobe. Nearly an order-of-magnitude improvement in S/N was observed in CPMAS, refocused-INEPT and 2D 13C-13C chemical shift correlation spectra of -synuclein fibrils compared with data collected on a conventional MAS probe. The improved S/N enables the acquisition of slowly decaying signals in the indirect dimension, facilitating faster, high-resolution multidimensional solid-state NMR spectroscopy. We therefore anticipate that MAS cryoprobe will become increasingly valuable for structural studies a wide range of samples that are less abundant, less stable, or transient, such as amyloid intermediates.

biophysics↗

Unveiling Cell Wall Structure and Echinocandin Response in Candida auris and Candida albicans via Solid-State NMR

Invasive candidiasis affects 1.6 million people annually, implicating high mortality and morbidity in immunocompromised and hospitalized patients. Echinocandins, inhibitors of {beta}-1,3-glucan synthesis, are used as a first-line treatment; however, their efficacy is increasingly compromised by resistance and tolerance. To understand how echinocandins remodel Candida cell wall structures, thereby reducing drug effectiveness, this study compares the effects of echinocandin exposure on the cell walls of the prevalent pathogen Candida albicans and the recently emerged multidrug-resistant superbug Candida auris. High-resolution solid-state NMR analysis revealed a conserved cell wall structure in both species, with a rigid inner layer composed of closely associated chitin microfibrils and {beta}-1,3-glucans, supported by a flexible network of {beta}-1,6-glucans and additional {beta}-1,3-glucans. Despite the presence of N-mannan fibrils in the outer layer, mannan components are mobile and rely on -1,2-linked mannoside sidechains to maintain contact with chitin and {beta}-1,3-glucans. Caspofungin treatment rigidifies certain mannan sidechains and {beta}-1, 6-glucans to reinforce the cell wall in response to the depletion of most {beta}-1,3-glucans. While caspofungin treatment reduced water permeability in both species, only C. albicans responded by inducing cell wall thickening and changes in chitin and {beta}-1,3-glucan dynamics. Furthermore, the deletion of KRE6 genes encoding {beta}-1,6-glucan synthase reduced the echinocandin susceptibility of C. auris, and the impaired {beta}-1,6-glucan biosynthesis were offset by compensatory upregulation of this wall component due to caspofungin treatment. The profound alterations induced by caspofungin in Candida cell wall architecture suggest that cell wall structural contribute substantially to drug resistance and tolerance.

microbiology↗

Molecular Architecture of Chitin and Chitosan-Dominated Cell Walls in Zygomycetous Fungal Pathogens by Solid-State NMR

Zygomycetous fungal infections pose an emerging medical threat among individuals with compromised immunity and metabolic abnormalities. Our pathophysiological understanding of these infections, particularly the role of fungal cell walls in growth and immune response, remains limited. Here we conducted multidimensional solid-state NMR analysis to examine cell walls in five Mucorales species, including key mucormycosis causative agents like Rhizopus and Mucor species. We show that the rigid core of the cell wall primarily comprises highly polymorphic chitin and chitosan, with minimal quantities of {beta}-glucans linked to a specific chitin subtype. Chitosan emerges as a pivotal molecule preserving hydration and dynamics. Some proteins are entrapped within this semi-crystalline chitin/chitosan layer, stabilized by the sidechains of hydrophobic amino acid residues, and situated distantly from {beta}-glucans. The mobile domain contains galactan- and mannan-based polysaccharides, along with polymeric -fucoses. Treatment with the chitin synthase inhibitor nikkomycin removes the {beta}-glucan-chitin/chitosan complex, leaving the other chitin and chitosan allomorphs untouched while simultaneously thickening and rigidifying the cell wall. These findings shed light on the organization of Mucorales cell walls and emphasize the necessity for a deeper understanding of the diverse families of chitin synthases and deacetylases as potential targets for novel antifungal therapies.

biophysics↗

Structural Remodeling of Fungal Cell Wall Promotes Resistance to Echinocandins

The insufficient efficacy of existing antifungal drugs and the rise in resistance necessitate the development of new therapeutic agents with novel functional mechanisms1,2. Echinocandins are an important class of antifungals that inhibit {beta}-1,3-glucan biosynthesis to interfere with cell wall structure and function3,4. However, their efficacy is limited by the fungistatic activity against Aspergillus species and the trailing effect during clinical application. Here, we describe how echinocandins remodel the supramolecular assembly of carbohydrate polymers in the fungal cell wall in an unexpected manner, possibly resulting in a subsequent inhibition of the activity of these drugs. Solid-state nuclear magnetic resonance (ssNMR) analysis of intact cells from the human pathogenic fungus Aspergillus fumigatus showed that the loss of {beta}-1,3-glucan and the increase of chitin content led to a decrease in cell wall mobility and water-permeability, thus enhancing resistance to environmental stresses. Chitosan and -1,3-glucan were found to be important buffering molecules whose physical association with chitin maintained the wall integrity. These new findings revealed the difficult-to-understand structural principles governing fungal pathogens response to echinocandins and opened new avenues for designing novel antifungal agents with improved efficacy.

biophysics↗

On-Pathway Oligomer of Human Islet Amyloid Polypeptide Induced and Stabilized by Mechanical Rotation During MAS NMR

Intermediates along the fibrillation pathway are generally considered to be the toxic species responsible for the pathologies of amyloid diseases. However, structural studies of these species have been hampered by heterogeneity and poor stability in standard aqueous conditions. Here, we report a novel methodology for producing stable, on-pathway oligomers of the human Type-2 Diabetes-associated islet amyloid polypeptide (hIAPP, or amylin) using the mechanical forces associated with magic angle spinning (MAS). The species were a heterogeneous mixture of globular and short rod-like species with significant {beta}-sheet content and the capability of seeding hIAPP fibrillation. We used MAS NMR to demonstrate that the nature of the species was sensitive to sample conditions including peptide concentration, ionic strength, and buffer. The methodology should be suitable for studies of other aggregating systems.

biophysics↗

Structural Organization of the Cell Wall of Halophilic Fungi

Halophilic fungi, which thrive in hypersaline habitats and face a range of extreme conditions. These fungal species have gained considerable attention due to their potential applications in harsh industrial processes, such as bioremediation and fermentation under unfavorable conditions of hypersalinity, low water activity, and extreme pH. However, the role of the cell wall in surviving these environmental conditions remains unclear. Here we employ solid-state NMR spectroscopy to compare the cell wall architecture of Aspergillus sydowii across salinity gradients. Analyses of intact cells reveal that A. sydowii cell walls contain a rigid core comprising chitin, {beta}-glucan, and chitosan, shielded by a surface shell composed of galactomannan and galactosaminogalactan. When exposed to hypersaline conditions, A. sydowii enhances chitin biosynthesis and incorporates -glucan to create thick, stiff, and hydrophobic cell walls. Such structural rearrangements enable the fungus to adapt to both hypersaline and salt-deprived conditions, providing a robust mechanism for withstanding external stress. These molecular principles can aid in the optimization of halophilic strains for biotechnology applications.

biophysics↗