Structures and mechanisms of actin ATP hydrolysis

Author:

Kanematsu Yusuke12,Narita Akihiro34ORCID,Oda Toshiro5,Koike Ryotaro6ORCID,Ota Motonori6ORCID,Takano Yu1ORCID,Moritsugu Kei7ORCID,Fujiwara Ikuko8ORCID,Tanaka Kotaro3,Komatsu Hideyuki9ORCID,Nagae Takayuki10ORCID,Watanabe Nobuhisa10,Iwasa Mitsusada6,Maéda Yuichiro361112ORCID,Takeda Shuichi312ORCID

Affiliation:

1. Graduate School of Information Sciences, Hiroshima City University, Hiroshima 731-3194, Japan

2. Graduate School of Advanced Science and Engineering, Hiroshima University, Hiroshima 739-8527, Japan

3. Structural Biology Research Center, Graduate School of Science, Nagoya University, Nagoya 464-8601, Japan

4. Division of Biological Science, Graduate School of Science, Nagoya University, Nagoya 464-8601, Japan

5. Faculty of Health and Welfare, Tokai Gakuin University, Gifu 504-8511, Japan

6. Graduate School of Informatics, Nagoya University, Nagoya 464-8601, Japan

7. Graduate School of Medical Life Science, Yokohama City University, Yokohama 230-0045, Japan

8. Graduate School of Science, Osaka City University, Osaka 558-8585, Japan

9. Department of Bioscience and Bioinformatics, Graduate School of Computer Science and Systems Engineering, Kyushu Institute of Technology, Iizuka 820-8502, Japan

10. Synchrotron Radiation Research Center, Nagoya University, Nagoya 464-8603, Japan

11. Toyota Physical and Chemical Research Institute, Aichi 480-1192, Japan

12. Research Institute for Interdisciplinary Science, Okayama University, Okayama 700-8530, Japan

Abstract

The major cytoskeleton protein actin undergoes cyclic transitions between the monomeric G-form and the filamentous F-form, which drive organelle transport and cell motility. This mechanical work is driven by the ATPase activity at the catalytic site in the F-form. For deeper understanding of the actin cellular functions, the reaction mechanism must be elucidated. Here, we show that a single actin molecule is trapped in the F-form by fragmin domain-1 binding and present their crystal structures in the ATP analog-, ADP-Pi-, and ADP-bound forms, at 1.15-Å resolutions. The G-to-F conformational transition shifts the side chains of Gln137 and His161, which relocate four water molecules including W1 (attacking water) and W2 (helping water) to facilitate the hydrolysis. By applying quantum mechanics/molecular mechanics calculations to the structures, we have revealed a consistent and comprehensive reaction path of ATP hydrolysis by the F-form actin. The reaction path consists of four steps: 1) W1 and W2 rotations; 2) P G –O 3B bond cleavage; 3) four concomitant events: W1–PO 3 formation, OH and proton cleavage, nucleophilic attack by the OH against P G , and the abstracted proton transfer; and 4) proton relocation that stabilizes the ADP-Pi–bound F-form actin. The mechanism explains the slow rate of ATP hydrolysis by actin and the irreversibility of the hydrolysis reaction. While the catalytic strategy of actin ATP hydrolysis is essentially the same as those of motor proteins like myosin, the process after the hydrolysis is distinct and discussed in terms of Pi release, F-form destabilization, and global conformational changes.

Funder

MEXT | Japan Society for the Promotion of Science

Japan Agency for Medical Research and Development

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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