| Literature DB >> 31387243 |
Corey L Jones1, Jetze J Tepe2.
Abstract
Loss of proteome fidelity leads to the accumulation of non-native protein aggregates and oxidatively damaged species: hallmarks of an aged cell. These misfolded and aggEntities:
Keywords: IDP; activation; aggregates; enhancement; intrinsically disordered proteins; neurodegenerative disease; oxidative damage; proteasome; proteotoxic
Year: 2019 PMID: 31387243 PMCID: PMC6696185 DOI: 10.3390/molecules24152841
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Figure 1Cartoon of IDP molding itself to accommodate differently shaped binding pockets to elicit some response.
Figure 2Venn diagram depicting three common features found in IDP structures and their complex interrelationship (Left). Hierarchy showing six IDP functions (green) from three binding modes (light blue) with an example of each type (dark blue, Right).
Figure 3Processive increases in oxidation and the effect on structure and function of proteins from intact function to proteolytic resistant and aggregated complexes (simplified).
Figure 4(A). Common features of all known 20S proteasomes, illustrating the positioning of the α and β rings, gate, anterior chambers and hydrolytic chamber. (B). Comparison of proteasomes, thermoplasma acidophilum, yeast, bovine and human. (C). Top view of alpha rings with (in counterclockwise direction) labeled subunits, circled intersubunit pockets, last twenty amino acids colored yellow in open gate, and last twenty amino acids color yellow in the closed conformation.
Figure 5(A). 11S activator with multi-colored monomers. (B). Top view of 11S-20S-11S yeast proteasome complex. (C). Side View of 11S-20S-11S yeast complex. Red Box zoom callout illustrating the 11S-20S interaction. Magenta residues illustrate conserved recognition sequence of Tyr8, Asp9, Pro17, and Tyr26 interacting beneath the yellow 11S subunit. Activation loop colored red on 11S.
Figure 6(A). Top view yeast 20S proteasome with the recognition sites highlighted magenta. (B). Top view of the human 20S proteasome with recognition sites colored magenta and similar residues in red.
Figure 7Surface representation of the 19S protein activator with individual subunits labeled. The “base” is depicted in shades of blue while the “lid” is presented in multiple colors.
Mutation Study from Smith et al.
| Terminal Sequence | Hydrolysis (%WT) |
|---|---|
| LYR (WT) | 100 |
| LY- | 4 |
| LYD | 5 |
| LYA | 100 |
| LYW | 106 |
| LYL | 13 |
| LYG | 77 |
| YRA | 2 |
| No PA | 5 |
Figure 8Suggested residues of interaction between C-termini of 19S base and CP alpha units in the ED2 open state. Schematic representing where Rpt tail insertions are occurring and are colored coordinated with the crystal structure images shown.
Figure 9(A) Schematic representation of Rpt units inserting C-termini into acceptor pockets on the 20S face. The Cp is represented as a heptagon and the Rpt tails as colored tori. (B) Image created from deletion of 19S subunits from deposited pdb structures corresponding to the listed states (pdb id: 6MSB, 6MSD, 6MSE, 6MSG, 6MSH, 6MSJ, 6MSK respectively) then alignment of all to the CP structures of 6MSB. Unbound free proteasome CP (4R3O) also aligned to 6MSB. Table values recorded from pymol output after completion of alignment. (C) Alpha Rings of EA1 overlaid with ED2. N-termini colored green in EA1 and red in ED2.
Figure 10Selected examples of known proteasome agonist demonstrating the structural diversity.