大阪大学 · 生化学・遺伝学・分子生物学
Kishikawa教授の研究室は、ATP合成酵素(V/A-ATPaseやF-ATP synthase)の構造と機能解明を柱としており、特に回転型ATPアーゼの分子機構、膜タンパク質の構造的・機能的制御、および一般麻酔薬がエネルギー代謝に与える影響を解明しています。単分子解析や低温電子線 microscopy を用いた高解像度構造解析により、ATP合成のメカニズムや抗菌標的の分子機構を解明しています。
Figures are computed from collected data and may differ slightly.
General anesthetics are indispensable for effective clinical care. Although, the mechanism of action of general anesthetics remains controversial, lipid bilayers and proteins have been discussed as their targets. In this study, we focused on the relationship between cellular ATP levels and general anesthetics. The ATP levels of nematodes and cultured mammalian cells were decreased by exposure to three general anesthetics: isoflurane, pentobarbital, and 1-phenoxy-2-propanol. Furthermore, these ge
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The Na<sup>+</sup>-pumping NADH-ubiquinone oxidoreductase (Na<sup>+</sup>-NQR) couples electron transfer from NADH to ubiquinone with Na<sup>+</sup>-pumping, generating an electrochemical Na<sup>+</sup> gradient that is essential for energy-consuming reactions in bacteria. Since Na<sup>+</sup>-NQR is exclusively found in prokaryotes, it is a promising target for highly selective antibiotics. However, the molecular mechanism of inhibition is not well-understood for lack of the atomic structural i
Reduction of ATP hydrolysis activity of vacuolar-type ATPase/synthase (V0V1) as a result of ADP inhibition occurs as part of the normal mechanism of V0V1 of Thermus thermophilus but not V0V1 of Enterococcus hirae or eukaryotes. To investigate the molecular basis for this difference, domain-swapped chimeric V1 consisting of both T. thermophilus and E. hirae enzymes were generated, and their function was analyzed. The data showed that the interaction between the nucleotide binding and C-terminal d
V/A-ATPase is a motor protein that shares a common rotary catalytic mechanism with F<sub>o</sub>F<sub>1</sub> ATP synthase. When powered by ATP hydrolysis, the V<sub>1</sub> domain rotates the central rotor against the A<sub>3</sub>B<sub>3</sub> hexamer, composed of three catalytic AB dimers adopting different conformations (AB<sub>open</sub>, AB<sub>semi</sub>, and AB<sub>closed</sub>). Here, we report the atomic models of 18 catalytic intermediates of the V<sub>1</sub> domain of V/A-ATPase und
V-ATPase is an energy converting enzyme, coupling ATP hydrolysis/synthesis in the hydrophilic V<sub>1</sub> domain, with proton flow through the V<sub>o</sub> membrane domain, via rotation of the central rotor complex relative to the surrounding stator apparatus. Upon dissociation from the V<sub>1</sub> domain, the V<sub>o</sub> domain of the eukaryotic V-ATPase can adopt a physiologically relevant auto-inhibited form in which proton conductance through the V<sub>o</sub> domain is prevented, how
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Vacuolar-type rotary H(+)-ATPase/synthase (V(o)V(1)) from Thermus thermophilus, composed of nine subunits, A, B, D, F, C, E, G, I, and L, has been reconstituted from individually isolated V(1) (A(3)B(3)D(1)F(1)) and V(o) (C(1)E(2)G(2)I(1)L(12)) subcomplexes in vitro. A(3)B(3)D and A(3)B(3) also reconstituted with V(o), resulting in a holoenzyme-like complexes. However, A(3)B(3)D-V(o) and A(3)B(3)-V(o) did not show ATP synthesis and dicyclohexylcarbodiimide-sensitive ATPase activity. The reconsti
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The Na<sup>+</sup>-pumping NADH-quinone oxidoreductase (Na<sup>+</sup>-NQR) is a key respiratory enzyme in many marine and pathogenic bacteria that couples electron transfer to Na<sup>+</sup>-pumping across the membrane. Earlier X-ray and cryo-EM structures of Na<sup>+</sup>-NQR from <i>Vibrio cholerae</i> suggested that the subunits harboring redox cofactors undergo conformational changes during catalytic turnover. However, these proposed rearrangements have not yet been confirmed. Here, we hav
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