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Warmuth, O. A.

Publications and source records attributed to Warmuth, O. A..

4 recordsLinked to original sources

In vitro-prepared A30P alpha-synuclein fibrils adopt the conserved and disease-relevant Greek key fold

The pathological hallmark of Parkinson Disease (PD) is the formation of the protein alpha-synuclein (Asyn) into {beta}-sheet rich, self-templating fibrils in the brain. Since the first atomic structure of wild-type Asyn fibrils was determined nearly a decade ago, several other in vitro structures of hereditary mutant fibrils and structures derived from post-mortem diseased patient tissue have been determined by solid-state nuclear magnetic resonance (SSNMR) spectroscopy and cryo-electron microscopy. These structures have not only expanded the library of structures available for computational modeling of drug binding and therapeutics development but have also given unprecedented insight into the disease specificity and structural polymorphism of Asyn fibrils. Here, we report the high-resolution SSNMR structure of the A30P hereditary mutant Asyn fibril, associated with early-onset PD. Our structural model is calculated using several thousand distance restraints derived from one sample, primarily sourced through 3D 13C-13C-13C correlation experiments. The structure adopts a Greek key topology yet does not include the P30 mutation site within the fibril core. We also introduce a comprehensive method for the rapid comparison of SSNMR spectra between Asyn polymorphs of known structure and validate the A30P fold. Lastly, we find that the structure is highly similar to many other experimental structures of both in vitro and ex vivo Asyn fibrils, including those with other hereditary point mutations, suggesting a conserved accessible fold.

biophysics↗

Backbone Assignment of a 28.5 kDa Class A Extended Spectrum β-Lactamase by High-Field, Carbon-Detected Solid-State NMR

13C and 15N backbone chemical shift assignments are reported for the 28.5 kDa protein Toho-1 {beta}-lactamase, a Class A extended spectrum {beta}-lactamase. A very high level of assignment completeness (97% of the backbone) is enabled by the combined sensitivity and resolution gains of ultrahigh-field NMR spectroscopy (1.1 GHz), improved probe technology, and optimized pulse sequences. The assigned chemical shifts agree well with our previous solution-state NMR assignments, indicating that the secondary structure is conserved in the solid state. These assignments provide a foundation for future investigations of sidechain chemical shifts and catalytic mechanism.

biochemistry↗

Alpha-Synuclein Fibril Structures Cluster into Distinct Classes

The accumulation of Alpha-synuclein (Asyn) fibrils is the defining pathologic feature in Parkinson Disease (PD), Lewy Body Dementia (LBD), and Multiple System Atrophy (MSA). As such, the process of Asyn fibril formation has been an important research area and fibrils themselves have become attractive targets for disease diagnosis and therapeutic intervention. Due to the presence of mixed populations of fibrillar proteins associated with neurodegenerative diseases in brain tissue, high-resolution structures of Asyn fibrils are essential for the design of high-specificity imaging and therapeutic agents. Approximately one hundred high-resolution solid-state NMR (SSNMR) spectroscopy and cryo-electron microscopy (cryo-EM) structures of Asyn fibrils have been deposited to the Protein Databank (PDB); intriguingly there is significant polymorphism among them. Understanding the molecular makeup and characteristic features of each structural polymorph can determine conserved structural motifs which can be used as templates to design ligands with high specificity for clinical use. Utilizing standard alignment tools and density-based clustering approaches, we objectively classify fibril structures by tertiary structure type. We find that 81% of the structures cluster into two polymorph classes. Within each class, additional subtle variations are observed which position sidechains in specific, conserved orientations, well poised as druggable targets. Furthermore, we find that the conserved structural motifs associated with each class are found in all but one published Asyn fibril structure. We consider these classifications and conserved motifs in the context of disease-relevant fibril structures and offer a perspective on the utility of in vitro fibrils as substrates for drug development and models for disease pathogenesis.

biophysics↗

Structure of alpha-synuclein fibrils derived from human Lewy body dementia tissue

The defining feature of Parkinson disease (PD) and Lewy body dementia (LBD) is the accumulation of alpha-synuclein (Asyn) fibrils in Lewy bodies and Lewy neurites. We developed and validated a novel method to amplify Asyn fibrils extracted from LBD postmortem tissue samples and used solid state nuclear magnetic resonance (SSNMR) studies to determine atomic resolution structure. Amplified LBD Asyn fibrils comprise two protofilaments with pseudo-21 helical screw symmetry, very low twist and an interface formed by antiparallel beta strands of residues 85-93. The fold is highly similar to the fold determined by a recent cryo-electron microscopy study for a minority population of twisted single protofilament fibrils extracted from LBD tissue. These results expand the structural landscape of LBD Asyn fibrils and inform further studies of disease mechanisms, imaging agents and therapeutics targeting Asyn.

neuroscience↗