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Structure of MotA, a flagellar stator protein, from hyperthermophile.

Authors :
Nishikino, Tatsuro
Takekawa, Norihiro
Tran, Duy Phuoc
Kishikawa, Jun-ichi
Hirose, Mika
Onoe, Sakura
Kojima, Seiji
Homma, Michio
Kitao, Akio
Kato, Takayuki
Imada, Katsumi
Source :
Biochemical & Biophysical Research Communications. Nov2022, Vol. 631, p78-85. 8p.
Publication Year :
2022

Abstract

Many motile bacteria swim and swarm toward favorable environments using the flagellum, which is rotated by a motor embedded in the inner membrane. The motor is composed of the rotor and the stator, and the motor torque is generated by the change of the interaction between the rotor and the stator induced by the ion flow through the stator. A stator unit consists of two types of membrane proteins termed A and B. Recent cryo-EM studies on the stators from mesophiles revealed that the stator consists of five A and two B subunits, whereas the low-resolution EM analysis showed that purified hyperthermophilic MotA forms a tetramer. To clarify the assembly formation and factors enhancing thermostability of the hyperthermophilic stator, we determined the cryo-EM structure of MotA from Aquifex aeolicus (Aa-MotA), a hyperthermophilic bacterium, at 3.42 Å resolution. Aa-MotA forms a pentamer with pseudo C5 symmetry. A simulated model of the Aa-MotA 5 MotB 2 stator complex resembles the structures of mesophilic stator complexes, suggesting that Aa-MotA can assemble into a pentamer equivalent to the stator complex without MotB. The distribution of hydrophobic residues of MotA pentamers suggests that the extremely hydrophobic nature in the subunit boundary and the transmembrane region is a key factor to stabilize hyperthermophilic Aa-MotA. • The Na-type stator of Aquifex aeolicus , a hyperhermophile, comprises MotA and MotB. • The structure of the hyperthermophilic Aa-MotA was determined at 3.42 Å. • Aa-MotA can form a pentameric ring assembly without MotB. • A simulated structure of Aa-stator is equivalent to known A 5 B 2 stator structures. • Extremely hydrophobic nature of Aa-MotA may be a key for its hyperthermostability. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
0006291X
Volume :
631
Database :
Academic Search Index
Journal :
Biochemical & Biophysical Research Communications
Publication Type :
Academic Journal
Accession number :
159564012
Full Text :
https://doi.org/10.1016/j.bbrc.2022.09.072