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Boyer, D. R.

Publications and source records attributed to Boyer, D. R..

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Cryo-EM structures of alpha-synuclein fibrils with the H50Q hereditary mutation reveal new polymorphs

Abstract\n\nDeposits of amyloid fibrils of -synuclein are the histological hallmarks of Parkinsons disease, multiple system atrophy, and dementia with Lewy bodies. Although most cases of these diseases are sporadic, autosomal-dominant hereditary mutations have been linked to Parkinsons disease and dementia with Lewy bodies. Seeing the changes to the structure of amyloid fibrils bearing these mutations may help to understand these diseases. To this end, we determined the cryo-EM structures of -synuclein fibrils containing the H50Q hereditary mutation. We find that the H50Q mutation results in two new polymorphs of -synuclein, which we term Narrow and Wide Fibrils. Both polymorphs recapitulate the conserved kernel formed by residues 50-77 observed in wild-type structures; however, the Narrow and Wide Fibrils reveal that H50Q disrupts a key interaction between H50-E57 on the opposing protofilament, abolishing the extensive protofilament interface formed by preNAC residues in the wild-type \"rod\" structure. Instead, the Narrow Fibril is formed from a single protofilament and the two protofilaments of the Wide protofilament are held together by only a pair of atoms - the C{gamma} atoms from the two threonine 59 sidechains. Further, we find that H50Q forms an intramolecular hydrogen bond with K45 leading to the formation of a novel {beta}-arch formed by residues 36-46 that features an extensive hydrogen-bond network between Y39, T44, and E46. The structures of the H50Q polymorphs help to rationalize the faster aggregation kinetics, higher seeding capacity in biosensor cells, and greater cytotoxicity we observe for H50Q compared to wild-type -synuclein.

biochemistry

Cryo-EM Structures of Four Polymorphic TDP-43 Amyloid Cores

Summary ParagraphTDP-43 is an essential DNA/RNA processing protein that undergoes both functional and pathogenic aggregation. Functional TDP-43 aggregates are reversible, forming transient species such as nuclear bodies, stress granules, and myo-granules1-3. In contrast pathogenic TDP-43 aggregates are irreversible, forming stable intracellular amyloid-like inclusions4,5. These inclusions are the primary pathology of amyotrophic lateral sclerosis (ALS) and frontotemporal lobar degeneration with TDP-43 inclusions (FTLD-TDP)6. Disease-associated, hereditary mutations in TDP-43 are known to accelerate the deposition of irreversible aggregates in the cytoplasm7. Reversible TDP-43 aggregation has been shown to precede the formation of irreversible amyloid fibrils similar to the behavior of proteins hnRNPA1 and FUS8-10. Still unknown, however, are the structural features of TDP-43 fibrils that confer both reversibility and irreversibility and how hereditary mutations can impose irreversible aggregation. Here, we determined the structures of amyloid fibrils formed by two segments previously reported to be the pathogenic cores of TDP-43 aggregation7,11,12; these are termed SegA (residues 311-360) and SegB A315E (residues 286-331 containing the ALS hereditary mutation A315E). SegA forms three polymorphs, all with dagger-shaped folds. SegB forms R-shaped folds. All four polymorphs have folds confined to two dimensions, and are stabilized by hydrophobic cores and peripheral hydrogen bonds. Energetic analysis suggests that the dagger-shaped polymorphs are examples of the irreversible fibril structures of TDP-43, whereas the SegB polymorph may participate in both reversible and irreversible fibril structure. Our structure suggests how the A315E mutation may convert this polymorph to the irreversible type and lead to mutation-enhanced pathology.

biochemistry