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通过片段同位素标记核磁共振波谱揭示的H⁺-ATP酶β亚基单体的构象变化

Conformational change of H+-ATPase beta monomer revealed on segmental isotope labeling NMR spectroscopy.

作者信息

Yagi Hiromasa, Tsujimoto Takuya, Yamazaki Toshio, Yoshida Masasuke, Akutsu Hideo

机构信息

Institute for Protein Research, Osaka University, 3-2 Yamadaoka, Suita 565-0871, Japan.

出版信息

J Am Chem Soc. 2004 Dec 22;126(50):16632-8. doi: 10.1021/ja045279o.

Abstract

F1-ATPase has been shown to be a stepwise molecular motor. Its rotation mechanism has been explained by the interaction of the gamma axis with the open and closed forms of the beta subunit. Although NMR should be a powerful method for elucidating its mechanism, its molecular size (473 amino acid residues, 52 kDa) is a major obstacle. We have applied segmental labeling based on intein ligation to the beta subunit, and succeeded in assigning 89% of the NH (402/451), 89% of the Calpha (417/473), 83% of the Cbeta (357/431), and 90% of the CO (425/473) signals of the beta subunit monomer. The secondary structures predicted from the chemical shifts of the main chain atoms and the relative orientations determined from residual dipolar couplings indicated that the subunit beta monomer takes on the open form in the absence of nucleotide. Furthermore, the chemical shift perturbation and the residual-dipolar-coupling changes induced by nucleotide binding show that conformational change from the open to the closed form takes place on nucleotide binding. The intrinsic conformational change of the beta subunit monomer induced by nucleotide binding must be one of the essential driving forces for the rotation of F1-ATPase.

摘要

F1 - ATP酶已被证明是一种逐步作用的分子马达。其旋转机制已通过γ轴与β亚基的开放和闭合形式之间的相互作用得到解释。尽管核磁共振(NMR)应该是阐明其机制的一种强大方法,但其分子大小(473个氨基酸残基,52 kDa)是一个主要障碍。我们已将基于内含肽连接的片段标记应用于β亚基,并成功归属了β亚基单体89%的NH(402/451)、89%的Cα(417/473)、83%的Cβ(357/431)以及90%的CO(425/473)信号。根据主链原子化学位移预测的二级结构以及由剩余偶极耦合确定的相对取向表明,在没有核苷酸的情况下,β亚基单体呈开放形式。此外,核苷酸结合引起的化学位移扰动和剩余偶极耦合变化表明,核苷酸结合时会发生从开放形式到闭合形式的构象变化。核苷酸结合诱导的β亚基单体固有构象变化必定是F1 - ATP酶旋转的基本驱动力之一。

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