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Chisholm, T. S.

Publications and source records attributed to Chisholm, T. S..

2 recordsLinked to original sources

Two Distinct Binding Modes Govern High-Affinity Ligand Interactions with Amyloid Fibrils

Fibrillar protein aggregates are a defining feature of neurodegenerative diseases and are attractive biomarkers and therapeutic targets. However, rational ligand design is limited by a poor mechanistic understanding of fibril binding. This work demonstrates that high-affinity binding to amyloid fibrils occurs via two topologically distinct binding modes, informing design changes that enhance ligand binding. Mathematical models were outlined that demonstrate these binding modes can be distinguished using diagnostic features from standard binding assays. Reanalysis of published binding data indicates that these binding modes are likely widespread amongst common ligand scaffolds. Guided by these binding modes, new ligands were designed with improved binding affinities and distinct fluorescence responses. Together, these findings support the presence of two prevalent binding modes and establish new design principles for enhancing interactions between ligands and amyloid fibrils.

biochemistry↗

The Morphology of α-Synuclein Fibrils Changes during Formation, Storage, and upon Exposure to Ligands

Protein fibrils are pathological hallmarks of many neurodegenerative diseases, including Parkinsons disease. The preparation of -synuclein (Syn) fibrils in vitro is widely used in research relating to these conditions. However, Syn fibrils exhibit substantial structural polymorphism. How fibril morphology evolves during formation, storage, or in the presence of small molecule ligands is poorly understood. Here, the evolution of Syn fibril morphology was investigated using fluorescence assays, circular dichroism, transmission electron microscopy, and ligand profiling. Fibril morphology was found to evolve continuously during both aggregation of Syn and subsequent storage, even at -79 {degrees}C. The inclusion of ligands, such as Thioflavin X, during aggregation affected both the reaction kinetics and the fibril morphologies formed. The addition of ligands to pre-formed fibrils also produced changes in fibril morphology. These results highlight that Syn fibrils are in equilibrium with their chemical environment and transition through a series of transient morphologies. Furthermore, these findings suggest the potential to use ligands to remodel fibril structure, possibly allowing for pathological morphologies to be converted to less pathological forms.

biochemistry↗