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Mason-Chalmers, K.

Publications and source records attributed to Mason-Chalmers, K..

2 recordsLinked to original sources

Visual exoproteomics of Clostridium thermocellum during anaerobic biomass-degradation identifies functional spirosomes

Visual proteomics enables the study of low-abundance proteins and identification of unknown complexes from heterogeneous samples by complementing high-resolution cryogenic electron microscopy (cryoEM) with external inputs on protein identity such as mass spectrometry. Using this approach, we interrogated the exoproteome of the anaerobic cellulose-degrading bacterium Clostridium thermocellum as it carried out biomass degradation. Mass spectrometry indicated a broad exoproteome composition, including cellulose degrading machinery CelA and CipA. A focus on large exoproteome assemblies revealed abundant protein filaments and pleomorphic vesicular structures. Analysis of the most abundant protein filaments yielded an [~]4 {square} resolution native structure that, aided by mass spectrometry, de novo modeling, and structural searching, was found to be the aldehyde-alcohol dehydrogenase (AdhE) spirosome. AdhE contained both NAD+ and Fe in their expected binding sites and biochemical and structural analyses of enriched spirosome preparations indicated they were functional. Altered NADH solution concentrations triggered conformational changes in the exoproteomic spirosomes, and the constituent AdhE remained capable of ethanol production. Although the basis for functional extracellular spirosome accumulation in live anaerobic C. thermocellum cultures remains unclear, their abundance in crude exoproteomes suggests their presence could influence biomass fueled C. thermocellum growth.

biochemistry↗

Tau Aggregation is Altered by Mutations in its Projection Domain

The intrinsically disordered microtubule-associated protein tau is known for its aberrant aggregation into neurofibrillary tangles as found in neuropathologies such as Alzheimers disease. This study compares three N-terminal isoforms of mutant R5L and of wild type tau to investigate how this mutation and the length of the projection domain affects aggregation behavior. Tau polymers in vitro were examined using atomic force microscopy imaging to compare tau filament lengths and morphologies. In a complementary analysis, the total amount of polymerization was analyzed using a Thioflavin S assay. We observed that the R5L mutation has a greater impact on filament length in shorter N-terminal isoforms of tau, whereas in longer N-terminal isoforms the mutation impacts the total amount of tau aggregation. These observations suggest that the R5L mutation affects the kinetic nucleation-elongation pathway of tau fibrillization, where the mutant impacts polymer nucleation in 2N and 1N isoforms, but has a more significant impact on elongation in the 0N isoform.

biophysics↗