Yayoi Otsuka
Hokkaido University
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Featured researches published by Yayoi Otsuka.
Biochemical and Biophysical Research Communications | 2010
Nobuto Arashiki; Yayoi Otsuka; Daisuke Ito; Mira Yang; Tomohiko Komatsu; Kota Sato; Mutsumi Inaba
Spectrin strengthens the red cell membrane through its direct association with membrane lipids and through protein-protein interactions. Spectrin loss reduces the membrane stability and results in various types of hereditary spherocytosis. However, less is known about acquired spectrin damage. Here, we showed that alpha- and beta-spectrin in human red cells are the primary targets of the lipid peroxidation product 4-hydroxy-2-nonenal (HNE) by immunoblotting and mass spectrometry analyses. The level of HNE adducts in spectrin (particularly alpha-spectrin) and several other membrane proteins was increased following the HNE treatment of red cell membrane ghosts prepared in the absence of MgATP. In contrast, ghost preparation in the presence of MgATP reduced HNE adduct formation, with preferential beta-spectrin modification and increased cross-linking of the HNE-modified spectrins. Exposure of intact red cells to HNE resulted in selective HNE-spectrin adduct formation with a similar preponderance of HNE-beta-spectrin modifications. These findings indicate that HNE adduction occurs preferentially in spectrin at the interface between the skeletal proteins and lipid bilayer in red cells and suggest that HNE-spectrin adduct aggregation results in the extrusion of damaged spectrin and membrane lipids under physiological and disease conditions.
Journal of Biological Chemistry | 2013
Wataru Otsu; Takao Kurooka; Yayoi Otsuka; Kota Sato; Mutsumi Inaba
Background: Endoplasmic reticulum (ER) export of transmembrane proteins depends on the interaction between cargo signals and Sec24 isoforms. Results: The ΦXΦXΦ sequence facilitates the ER export of model proteins and selectively binds to Sec24C. Conclusion: ΦXΦXΦ is a novel ER export signal that is specifically recognized by Sec24C. Significance: This novel cargo-Sec24 interaction provides mechanistic insights into vesicular transport. Protein export from the endoplasmic reticulum (ER) depends on the interaction between a signal motif on the cargo and a cargo recognition site on the coatomer protein complex II. A hydrophobic sequence in the N terminus of the bovine anion exchanger 1 (AE1) anion exchanger facilitated the ER export of human AE1Δ11, an ER-retained AE1 mutant, through interaction with a specific Sec24 isoform. The cell surface expression and N-glycan processing of various substitution mutants or chimeras of human and bovine AE1 proteins and their Δ11 mutants in HEK293 cells were examined. The N-terminal sequence (V/L/F)X(I/L)X(M/L), 26VSIPM30 in bovine AE1, which is comparable with ΦXΦXΦ, acted as the ER export signal for AE1 and AE1Δ11 (Φ is a hydrophobic amino acid, and X is any amino acid). The AE1-Ly49E chimeric protein possessing the ΦXΦXΦ motif exhibited effective cell surface expression and N-glycan maturation via the coatomer protein complex II pathway, whereas a chimera lacking this motif was retained in the ER. A synthetic polypeptide containing the N terminus of bovine AE1 bound the Sec23A-Sec24C complex through a selective interaction with Sec24C. Co-transfection of Sec24C-AAA, in which the residues 895LIL897 (the binding site for another ER export signal motif IXM on Sec24C and Sec24D) were mutated to 895AAA897, specifically increased ER retention of the AE1-Ly49E chimera. These findings demonstrate that the ΦXΦXΦ sequence functions as a novel signal motif for the ER export of cargo proteins through an exclusive interaction with Sec24C.
Biochemical and Biophysical Research Communications | 2013
Kota Sato; Wataru Otsu; Yayoi Otsuka; Mutsumi Inaba
The PDZ (PSD-95/Drosophila discs-large protein/zonula occludens protein) domain-containing proteins Na(+)/H(+) exchanger regulatory factor 1 (NHERF1) and NHERF2 interact with the glutamate transporter GLAST. To characterize the roles of these NHERF proteins in the plasma membrane targeting of GLAST, we examined the interaction of green fluorescent protein (EGFP)-tagged GLAST with epitope-tagged NHERF proteins in human embryonic kidney (HEK) 293T cells. Co-expression of either NHERF protein increased the cell surface expression of EGFP-GLAST. Deletion of the C-terminal PDZ domain-binding motif caused an increase in EGFP-GLAST with immature endoglycosidase H-sensitive N-linked oligosaccharides, suggesting impaired exit of EGFP-GLAST from the endoplasmic reticulum (ER). Immunoprecipitation experiments revealed that NHERF1 predominantly bound EGFP-GLAST containing immature N-glycans, whereas NHERF2 co-precipitated EGFP-GLAST with mature N-glycans. Expression of a dominant-negative mutant of the GTPase Sar1 increased the interaction of EGFP-GLAST with NHERF1 in the ER. By contrast, immunofluorescence microscopy showed that NHERF2 co-localized with EGFP-GLAST in ER-Golgi intermediate compartments (ERGICs), at the plasma membrane and in early endosomes, but not in the ER. These results suggest that NHERF1 interacts with GLAST during ER export, while NHERF2 interacts with GLAST in the secretory pathway from the ERGIC to the plasma membrane, thereby modulating the cell surface expression of GLAST.
Journal of Veterinary Medical Science | 2001
Yayoi Otsuka; Masahiro Yamasaki; Osamu Yamato; Yoshimitsu Maede
Journal of Veterinary Medical Science | 2002
Yayoi Otsuka; Masahiro Yamasaki; Osamu Yamato; Yoshimitsu Maede
Journal of Veterinary Medical Science | 2000
Masahiro Yamasaki; Yayoi Otsuka; Osamu Yamato; Motoshi Tajima; Yoshimitsu Maede
American Journal of Veterinary Research | 2000
Masahiro Yamasaki; Hiroyuki Asano; Yayoi Otsuka; Osamu Yamato; Motoshi Tajima; Yoshimitsu Maede
Journal of Veterinary Medical Science | 2012
Chen-Chi Wang; Kota Sato; Yayoi Otsuka; Wataru Otsu; Mutsumi Inaba
Journal of Veterinary Medical Science | 2010
Tomohiko Komatsu; Kota Sato; Yayoi Otsuka; Nobuto Arashiki; Kohei Tanaka; Satoshi Tamahara; Kenichiro Ono; Mutsumi Inaba
Japanese Journal of Veterinary Research | 2009
Hirokazu Adachi; Daisuke Ito; Takao Kurooka; Yayoi Otsuka; Nobuto Arashiki; Kota Sato; Mutsumi Inaba