The University of Osaka · Medicine
Professor Takao Arimori's research lab specializes in structural biology and enzymology, focusing on the molecular mechanisms of protein-ligand interactions, particularly in enzymes involved in carbohydrate metabolism and nucleotide signaling. The lab employs a combination of X-ray crystallography, cryo-electron microscopy, and NMR spectroscopy to elucidate the structural basis of substrate specificity and catalytic function in glycoside hydrolases, nucleotide hydrolases, and cell adhesion molecules. Key research directions include understanding the structural dynamics of chitinases and their unique substrate-binding architectures, the mechanism of nucleotide diphosphatase activity in NUDT5, and the development of novel protein tags for structural and functional studies.
Figures are computed from collected data and may differ slightly.
Recognition of laminin by integrin receptors is central to the epithelial cell adhesion to basement membrane, but the structural background of this molecular interaction remained elusive. Here, we report the structures of the prototypic laminin receptor α6β1 integrin alone and in complex with three-chain laminin-511 fragment determined via crystallography and cryo-electron microscopy, respectively. The laminin-integrin interface is made up of several binding sites located on all five subunits, w
Human NUDT5 (hNUDT5) hydrolyzes various modified nucleoside diphosphates including 8-oxo-dGDP, 8-oxo-dADP and ADP-ribose (ADPR). However, the structural basis of the broad substrate specificity remains unknown. Here, we report the crystal structures of hNUDT5 complexed with 8-oxo-dGDP and 8-oxo-dADP. These structures reveal an unusually different substrate-binding mode. In particular, the positions of two phosphates (α and β phosphates) of substrate in the 8-oxo-dGDP and 8-oxo-dADP complexes are
Chitinase C from Ralstonia sp. A-471 (Ra-ChiC) has a catalytic domain sequence similar to goose-type (G-type) lysozymes and, unlike other chitinases, belongs to glycohydrolase (GH) family 23. Using NMR spectroscopy, however, Ra-ChiC was found to interact only with the chitin dimer but not with the peptidoglycan fragment. Here we report the crystal structures of wild-type, E141Q, and E162Q of the catalytic domain of Ra-ChiC with or without chitin oligosaccharides. Ra-ChiC has a substrate-binding
The MAP tag system comprises a 14-residue peptide derived from mouse podoplanin and its high-affinity monoclonal antibody PMab-1. We determined the crystal structure of PMab-1 complexed with the MAP tag peptide and found that the recognition required only the N-terminal 8 residues of MAP tag sequence, enabling the shortening of the tag length without losing the affinity for PMab-1. Furthermore, the structure illustrated that the MAP tag adopts a U-shaped conformation when bound by PMab-1, sugges
The saccharification process is essential for bioethanol production from woody biomass including celluloses. Cold-adapted cellulase, which has sufficient activity at low temperature (<293 K), is capable of reducing heating costs during the saccharification process and is suitable for simultaneous saccharification and fermentation. Endo-1,4-β-glucanase from the earthworm Eisenia fetida (EF-EG2) belonging to glycoside hydrolase family 9 has been shown to have the highest activity at 313 K, and als
Chitinase C from a moderate thermophilic strain Ralstonia sp. A-471 (Ra-ChiC) is a novel chitinase which has a catalytic domain sequence similar to goose type lysozymes and, unlike other chitinases, Ra-ChiC belongs to glycoside hydrolase family 23. We have determined the crystal structures of Ra-ChiC catalytic domain and its inactive mutant with or without chitin oligosaccharides. These structures indicated that Ra-ChiC has a unique substrate-binding site including a tunnel-shaped cavity. In add
In the protein crystallography, antibodies are frequently used as ‘crystallization chaperones’, where their binding facilitates production of high-quality diffracting crystals of complex macromolecules that are otherwise resistant to crystallization. To develop an ideal antibody fragment, we have designed a novel antibody fragment format, called ‘Fv-clasp’, that is a fusion of an anti-parallel coiled-coil structure derived from the hMst1 SARAH domain to the Fv fragment of an antibody. We have de
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