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How Does F1-ATPase Generate Torque?: Analysis From Cryo-Electron Microscopy and Rotational Catalysis of Thermophilic F1.

Authors :
Noji, Hiroyuki
Ueno, Hiroshi
Source :
Frontiers in Microbiology; 5/6/2022, Vol. 13, p1-7, 7p
Publication Year :
2022

Abstract

The F<subscript>1</subscript>-ATPase is a rotary motor fueled by ATP hydrolysis. Its rotational dynamics have been well characterized using single-molecule rotation assays. While F<subscript>1</subscript>-ATPases from various species have been studied using rotation assays, the standard model for single-molecule studies has been the F<subscript>1</subscript>-ATPase from thermophilic Bacillus sp. PS3, named TF<subscript>1</subscript>. Single-molecule studies of TF<subscript>1</subscript> have revealed fundamental features of the F<subscript>1</subscript>-ATPase, such as the principal stoichiometry of chemo-mechanical coupling (hydrolysis of 3 ATP per turn), torque (approximately 40 pN·nm), and work per hydrolysis reaction (80 pN·nm = 48 kJ/mol), which is nearly equivalent to the free energy of ATP hydrolysis. Rotation assays have also revealed that TF<subscript>1</subscript> exhibits two stable conformational states during turn: a binding dwell state and a catalytic dwell state. Although many structures of F<subscript>1</subscript> have been reported, most of them represent the catalytic dwell state or its related states, and the structure of the binding dwell state remained unknown. A recent cryo-EM study on TF<subscript>1</subscript> revealed the structure of the binding dwell state, providing insights into how F<subscript>1</subscript> generates torque coupled to ATP hydrolysis. In this review, we discuss the torque generation mechanism of F<subscript>1</subscript> based on the structure of the binding dwell state and single-molecule studies. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
1664302X
Volume :
13
Database :
Complementary Index
Journal :
Frontiers in Microbiology
Publication Type :
Academic Journal
Accession number :
156739851
Full Text :
https://doi.org/10.3389/fmicb.2022.904084