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Ekimoto, T.

Publications and source records attributed to Ekimoto, T..

2 recordsLinked to original sources

Allosteric regulation of 3CL protease of SARS-CoV-2 and SARS-CoV observed in the crystal structure ensemble

The 3C-like protease (3CLpro) of SARS-CoV-2 is a potential therapeutic target for COVID-19. Importantly, it has an abundance of structural information solved as a complex with various drug candidate compounds. Collecting these crystal structures (83 Protein Data Bank (PDB) entries) together with those of the highly homologous 3CLpro of SARS-CoV (101 PDB entries), we constructed the crystal structure ensemble of 3CLpro to analyze the dynamic regulation of its catalytic function. The structural dynamics of the 3CLpro dimer observed in the ensemble were characterized by the motions of four separate loops (the C-loop, E-loop, H-loop, and Linker) and the C-terminal domain III on the rigid core of the chymotrypsin fold. Among the four moving loops, the C-loop (also known as the oxyanion binding loop) causes the order (active)-disorder (collapsed) transition, which is regulated cooperatively by five hydrogen bonds made with the surrounding residues. The C-loop, E-loop, and Linker constitute the major ligand binding sites, which consist of a limited variety of binding residues including the substrate binding subsites. Ligand binding causes a ligand size dependent conformational change to the E-loop and Linker, which further stabilize the C-loop via the hydrogen bond between the C-loop and E-loop. The T285A mutation from SARS-CoV 3CLpro to SARS-CoV-2 3CLpro significantly closes the interface of the domain III dimer and allosterically stabilizes the active conformation of the C-loop via hydrogen bonds with Ser1 and Gly2; thus, SARS-CoV-2 3CLpro seems to have increased activity relative to that of SARS-CoV 3CLpro.

biophysics↗

Moving toward generalizable NZ-1 labeling for 3D structure determination with optimized epitope tag insertion

Antibody labeling has been extensively conducted for structure determination in both x-ray crystallography and EM analysis. However, establishing target-specific antibodies is a prerequisite for applying antibody-assisted structural analysis. To expand the applicability of this strategy, we have developed an alternative method to prepare an antibody-complex by inserting an exogenous epitope into the target. We have already demonstrated that the Fab of monoclonal antibody NZ-1 could form a stable complex with the target containing a PA12 tag as an inserted epitope. Nevertheless, we also found that the complex formation through the inserted PA12 tag inevitably caused structural change around the insertion site of the target. Hence, we here attempted to improve the insertion method and consequently discovered that utilization of a PA14 tag significantly reduced the structural change in the target. By adopting a closed ring-like conformation inside the antigen-binding pocket, the inserted PA14 tag had less impact on the folding of the target. Due to this structural property, the PA14 tag could also be inserted into the sterically hindered loop for labeling. Molecular dynamics simulations also indicated that the folding of the target was rigid regardless of the PA14 insertion and the complex formation with the NZ-1 Fab. Using the improved labeling technique, we performed negative-stain EM on a bacterial site-2 protease, which enabled us to approximate the domain arrangement based on the docking mode of the NZ-1 Fab.

biophysics↗