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Baumgardt, J. K.

Publications and source records attributed to Baumgardt, J. K..

2 recordsLinked to original sources

Complementary Structural and Chemical Biology Methods Reveal the Basis for Selective Radioligand Binding to α-Synuclein in MSA Tissue

Fibrillar aggregation of -synuclein (Syn) is a hallmark of Parkinsons disease (PD) and related disorders, including multiple system atrophy (MSA) and dementia with Lewy bodies (DLB). Despite advances in Syn fibril structural characterization, the relevance of in vitro and ex vivo structures to patient aggregates remains unclear, particularly for developing therapeutic or diagnostic molecules. Cryo-electron microscopy (cryo-EM) studies of Syn fibrils with ligands often reveal binding at multiple sites, likely due to high ligand concentrations. Here, various structural and chemical biology techniques were used to characterize Syn fibrils in the presence of EX-6, a candidate ligand for positron emission tomography (PET) imaging of synucleinopathies. Transmission electron microscopy (TEM) and cryo-EM revealed no significant fibril core changes upon binding. Forster resonance energy transfer (FRET) further demonstrated that the disordered C-terminus was unaltered. Cryo-EM and crosslinking mass spectrometry (XL-MS) identified consistent binding sites, with one (Site 2*) providing a well-defined pocket for high-resolution analysis. Site 2* showed similar residue positioning in MSA patient-derived structures, suggesting MSA selectivity. [3H]-EX-6 binding assays demonstrated a 10-fold preference for MSA over PD tissue, with autoradiography further confirming MSA selectivity. Taken together, the combined use of structural and chemical biology techniques provides a comprehensive understanding of EX-6 binding that would not be possible with any single method. Optimization of ligand-protein and ligand-ligand interactions observed in the cryo-EM structure will enable the development of EX-6 as a PET imaging probe for MSA.

neuroscience↗

Atomic-level architecture of Caulobacter crescentus flagellar filaments provide evidence for multi-flagellin filament stabilization

Flagella are dynamic, ion-powered machines with assembly pathways that are optimized for efficient flagella production. In bacteria, dozens of genes are coordinated at specific times in the cell lifecycle to generate each component of the flagellum. This is the case for Caulobacter crescentus, but little is known about why this species encodes six different flagellin genes. Furthermore, little is known about the benefits multi-flagellin species possess over single flagellin species, if any, or what molecular properties allow for multi-flagellin filaments to assemble. Here we present an in-depth analysis of several single flagellin filaments from C. crescentus, including an extremely well-resolved structure of a bacterial flagellar filament. We highlight key molecular interactions that differ between each bacterial strain and speculate how these interactions may alleviate or impose helical strain on the overall architecture of the filament. We detail conserved residues within the flagellin subunit that allow for the synthesis of multi-flagellin filaments. We further comment on how these molecular differences impact bacterial motility and highlight how no single flagellin filament achieves wild-type levels of motility, suggesting C. crescentus has evolved to produce a filament optimized for motility comprised of six flagellins. Finally, we highlight an ordered arrangement of glycosylation sites on the surface of the filaments and speculate how these sites may protect the {beta}-hairpin located on the surface exposed domain of the flagellin subunit.

biophysics↗