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Featured researches published by Yumiko Uchida.


Journal of Bacteriology | 2013

Interaction between FliJ and FlhA, Components of the Bacterial Flagellar Type III Export Apparatus

Tatsuya Ibuki; Yumiko Uchida; Yusuke Hironaka; Keiichi Namba; Katsumi Imada; Tohru Minamino

A soluble protein, FliJ, along with a membrane protein, FlhA, plays a role in the energy coupling mechanism for bacterial flagellar protein export. The water-soluble FliH(X)-FliI(6) ATPase ring complex allows FliJ to efficiently interact with FlhA. However, the FlhA binding site of FliJ remains unknown. Here, we carried out genetic analysis of a region formed by well-conserved residues-Gln38, Leu42, Tyr45, Tyr49, Phe72, Leu76, Ala79, and His83-of FliJ. A structural model of the FliI(6)-FliJ ring complex suggests that they extend out of the FliI(6) ring. Glutathione S-transferase (GST)-FliJ inhibited the motility of and flagellar protein export by both wild-type cells and a fliH-fliI flhB(P28T) bypass mutant. Pulldown assays revealed that the reduced export activity of the export apparatus results from the binding of GST-FliJ to FlhA. The F72A and L76A mutations of FliJ significantly reduced the binding affinity of FliJ for FlhA, thereby suppressing the inhibitory effect of GST-FliJ on the protein export. The F72A and L76A mutations were tolerated in the presence of FliH and FliI but considerably reduced motility in their absence. These two mutations affected neither the interaction with FliI nor the FliI ATPase activity. These results suggest that FliJ(F72A) and FliJ(L76A) require the support of FliH and FliI to exert their export function. Therefore, we propose that the well-conserved surface of FliJ is involved in the interaction with FlhA.


Proceedings of the National Academy of Sciences of the United States of America | 2016

Insight into the flagella type III export revealed by the complex structure of the type III ATPase and its regulator

Katsumi Imada; Tohru Minamino; Yumiko Uchida; Miki Kinoshita; Keiichi Namba

Significance The flagellar basal body contains a type III protein export machinery to construct the flagellar axial structure. ATP hydrolysis by FliI facilitates the flagellar protein export, and the ATPase activity is regulated by FliH. In this study, the structure of the homodimer of a FliH fragment (FliHC) complexed with FliI has been solved at 3.0-Å resolution. FliHC2 shows a marked structural similarity to the peripheral stalk of the A/V-type ATPases, and the proposed FliHC2–FliI hexamer model resembles in situ electron cryotomographic images. These results suggest that FliH2 functions as a peripheral stalk of the type III ATPase complex and that the flagellar export system and F/A/V-type ATPases share a similar functional mechanism and close evolutionary relationship. FliI and FliJ form the FliI6FliJ ATPase complex of the bacterial flagellar export apparatus, a member of the type III secretion system. The FliI6FliJ complex is structurally similar to the α3β3γ complex of F1-ATPase. The FliH homodimer binds to FliI to connect the ATPase complex to the flagellar base, but the details are unknown. Here we report the structure of the homodimer of a C-terminal fragment of FliH (FliHC2) in complex with FliI. FliHC2 shows an unusually asymmetric homodimeric structure that markedly resembles the peripheral stalk of the A/V-type ATPases. The FliHC2–FliI hexamer model reveals that the C-terminal domains of the FliI ATPase face the cell membrane in a way similar to the F/A/V-type ATPases. We discuss the mechanism of flagellar ATPase complex formation and a common origin shared by the type III secretion system and the F/A/V-type ATPases.


Scientific Reports | 2016

Identification of a Vibrio cholerae chemoreceptor that senses taurine and amino acids as attractants

So-ichiro Nishiyama; Yohei Takahashi; Kentaro Yamamoto; Daisuke Suzuki; Yasuaki Itoh; Kazumasa Sumita; Yumiko Uchida; Michio Homma; Katsumi Imada; Ikuro Kawagishi

Vibrio cholerae, the etiological agent of cholera, was found to be attracted by taurine (2-aminoethanesulfonic acid), a major constituent of human bile. Mlp37, the closest homolog of the previously identified amino acid chemoreceptor Mlp24, was found to mediate taxis to taurine as well as L-serine, L-alanine, L-arginine, and other amino acids. Methylation of Mlp37 was enhanced upon the addition of taurine and amino acids. Isothermal titration calorimetry demonstrated that a purified periplasmic fragment of Mlp37 binds directly to taurine, L-serine, L-alanine and L-arginine. Crystal structures of the periplamic domain of Mlp37 revealed that L-serine and taurine bind to the membrane-distal PAS domain in essentially in the same way. The structural information was supported by characterising the in vivo properties of alanine-substituted mutant forms of Mlp37. The fact that the ligand-binding domain of the L-serine complex had a small opening, which would accommodate a larger R group, accounts for the broad ligand specificity of Mlp37 and allowed us to visualise ligand binding to Mlp37 with fluorescently labelled L-serine. Taken together, we conclude that Mlp37 serves as the major chemoreceptor for taurine and various amino acids.


Scientific Reports | 2015

Molecular and structural analysis of Legionella DotI gives insights into an inner membrane complex essential for type IV secretion

Takuya Kuroda; Tomoko Kubori; Xuan Thanh Bui; Akihiro Hyakutake; Yumiko Uchida; Katsumi Imada; Hiroki Nagai

The human pathogen Legionella pneumophila delivers a large array of the effector proteins into host cells using the Dot/Icm type IVB secretion system. Among the proteins composing the Dot/Icm system, an inner membrane protein DotI is known to be crucial for the secretion function but its structure and role in type IV secretion had not been elucidated. We report here the crystal structures of the periplasmic domains of DotI and its ortholog in the conjugation system of plasmid R64, TraM. These structures reveal a striking similarity to VirB8, a component of type IVA secretion systems, suggesting that DotI/TraM is the type IVB counterpart of VirB8. We further show that DotI and its partial paralog DotJ form a stable heterocomplex. R64 TraM, encoded by the conjugative plasmid lacking DotJ ortholog, forms a homo-hexamer. The DotI-DotJ complex is distinct from the core complex, which spans both inner and outer membranes to form a substrate conduit, and seems not to stably associate with the core complex. These results give insight into VirB8-family inner membrane proteins essential for type IV secretion and aid towards understanding the molecular basis of secretion systems essential for bacterial pathogenesis.


Acta Crystallographica Section F-structural Biology and Crystallization Communications | 2012

Crystallization and preliminary X-ray analysis of the FliH–FliI complex responsible for bacterial flagellar type III protein export

Yumiko Uchida; Tohru Minamino; Keiichi Namba; Katsumi Imada

The bacterial flagellar proteins are translocated into the central channel of the flagellum by a specific protein-export apparatus for self-assembly at the distal growing end. FliH and FliI are soluble components of the export apparatus and form an FliH2-FliI heterotrimer in the cytoplasm. FliI is an ATPase and the FliH2-FliI complex delivers export substrates from the cytoplasm to an export gate made up of six integral membrane proteins of the export apparatus. In this study, an FliHC fragment consisting of residues 99-235 was co-purified with FliI and the FliHC2-FliI complex was crystallized. Crystals were obtained using the hanging-drop vapour-diffusion technique with PEG 400 as a precipitant. The crystals belonged to the orthorhombic space group P2(1)2(1)2(1), with unit-cell parameters a=133.7, b=147.3, c=164.2 Å, and diffracted to 3.0 Å resolution.


生物物理 | 2014

3P015 コレラ菌走化性受容体Mlp24,Mlp37 のリガンド認識機構(01A. 蛋白質:構造,ポスター,第52回日本生物物理学会年会(2014年度))

Yohei Takhashi; Kazumasa Sumita; Yumiko Uchida; So-ichiro Nishiyama; Ikuro Kawagishi; Katsumi Imada


Seibutsu Butsuri | 2014

3P015 Ligand recognition mechanism of Mlp24 and Mlp37, chemoreceptor proteins of Vibrio cholerae(01A. Protein: Structure,Poster,The 52nd Annual Meeting of the Biophysical Society of Japan(BSJ2014))

Yohei Takhashi; Kazumasa Sumita; Yumiko Uchida; So-ichiro Nishiyama; Ikuro Kawagishi; Katsumi Imada


生物物理 | 2013

2P004 コレラ菌の走化性受容体蛋白質Mlp24とそのリガンド複合体の構造(01A. 蛋白質:構造,ポスター,日本生物物理学会年会第51回(2013年度))

Yohei Takahashi; Kazuma Sumita; Yumiko Uchida; So-ichiro Nishiyama; Ikuro Kawagishi; Katsumi Imada


生物物理 | 2013

2P003 べん毛III型輸送装置蛋白質FlhAの細胞質領域の構造変化(01A. 蛋白質:構造,ポスター,日本生物物理学会年会第51回(2013年度))

Yuya Ogawa; Noritaka Hara; Yumiko Uchida; Miki Kinoshita; Tohru Minamino; Katsumi Imada


Seibutsu Butsuri | 2013

2P003 Conformational change of a cytoplasmic fragment of FlhA, a flagellar type III protein export apparatus protein(01A. Protein: Structure,Poster)

Yuya Ogawa; Noritaka Hara; Yumiko Uchida; Miki Kinoshita; Tohru Minamino; Katsumi Imada

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Takuya Kuroda

Foundation for Biomedical Research

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