Mizue Tanigawara
University of Tokyo
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Publication
Featured researches published by Mizue Tanigawara.
Biophysics | 2012
Kumiko Hayashi; Mizue Tanigawara; Jun-ichi Kishikawa
The fluctuation theorem (FT), which is a recent achievement in non-equilibrium statistical mechanics, has been suggested to be useful for measuring the driving forces of motor proteins. As an example of this application, we performed single-molecule experiments on F1-ATPase, which is a rotary motor protein, in which we measured its rotary torque by taking advantage of FT. Because fluctuation is inherent nature in biological small systems and because FT is a non-destructive force measurement method using fluctuation, it will be applied to a wide range of biological small systems in future.
Biophysical Journal | 2015
Rikiya Watanabe; Kazuma Koyasu; Huijuan You; Mizue Tanigawara; Hiroyuki Noji
F1-ATPase (F1) is an ATP-driven rotary motor in which the three catalytic β subunits in the stator ring sequentially induce the unidirectional rotation of the rotary γ subunit. Many lines of evidence have revealed open-to-closed conformational transitions in the β subunit that swing the C-terminal domain inward. This conformational transition causes a C-terminal protruding loop with conserved sequence DELSEED to push the γ subunit. Previous work, where all residues of DELSEED were substituted with glycine to disrupt the specific interaction with γ and introduce conformational flexibility, showed that F1 still rotated, but that the torque was halved, indicating a remarkable impact on torque transmission. In this study, we conducted a stall-and-release experiment on F1 with a glycine-substituted DELSEED loop to investigate the impact of the glycine substitution on torque transmission upon ATP binding and ATP hydrolysis. The mutant F1 showed a significantly reduced angle-dependent change in ATP affinity, whereas there was no change in the equilibrium for ATP hydrolysis. These findings indicate that the DELSEED loop is predominantly responsible for torque transmission upon ATP binding but not for that upon ATP hydrolysis.
Biophysical Journal | 2012
Mizue Tanigawara; Kazuhito V. Tabata; Yuko Ito; Jotaro Ito; Rikiya Watanabe; Hiroshi Ueno; Mitsunori Ikeguchi; Hiroyuki Noji
生物物理 | 2013
Kazuma Koyasu; Mizue Tanigawara; Rikiya Watanabe; Hiroyuki Noji
Seibutsu Butsuri | 2013
Kazuma Koyasu; Mizue Tanigawara; Rikiya Watanabe; Hiroyuki Noji
生物物理 | 2012
Kazuma Koyasu; Rikiya Watanabe; Mizue Tanigawara; Hiroyuki Noji
Seibutsu Butsuri | 2012
Kazuma Koyasu; Rikiya Watanabe; Mizue Tanigawara; Hiroyuki Noji
生物物理 | 2010
Mizue Tanigawara; Jotaro Ito; Kazuhito V. Tabata; Hiroyuki Noji
Seibutsu Butsuri | 2010
Mizue Tanigawara; Jotaro Ito; Kazuhito V. Tabata; Hiroyuki Noji
Seibutsu Butsuri | 2010
Takayuki Uchihashi; Ryota Iino; Hayato Yamashita; Mizue Tanigawara; Toshio Ando; Hiroyuki Noji