Rotation of the Fla2 flagella of Cereibacter sphaeroides requires the periplasmic proteins MotK and MotE that interact with the flagellar stator protein MotB2

Author:

Vélez-González Fernanda,Marcos-Vilchis Arely,Vega-Baray Benjamín,Dreyfus Georges,Poggio Sebastian,Camarena LauraORCID

Abstract

The bacterial flagellum is a complex structure formed by more than 25 different proteins, this appendage comprises three conserved structures: the basal body, the hook and filament. The basal body, embedded in the cell envelope, is the most complex structure and houses the export apparatus and the motor. In situ images of the flagellar motor in different species have revealed a huge diversity of structures that surround the well-conserved periplasmic components of the basal body. The identity of the proteins that form these novel structures in many cases has been elucidated genetically and biochemically, but in others they remain to be identified or characterized. In this work, we report that in the alpha proteobacteria Cereibacter sphaeroides the novel protein MotK along with MotE are essential for flagellar rotation. We show evidence that these periplasmic proteins interact with each other and with MotB2. Moreover, these proteins localize to the flagellated pole and MotK localization is dependent on MotB2 and MotA2. These results together suggest that the role of MotK and MotE is to activate or recruit the flagellar stators to the flagellar structure.

Funder

Dirección General de Asuntos del Personal Académico- Programa de Apoyo a Proyectos de Investigación e Innovación Tecnológica (DGAPA-PAPIIT), de la Universidad Nacional Autónoma de México

Consejo Nacional de Humanidades, Ciencia y Tecnología

Publisher

Public Library of Science (PLoS)

Reference118 articles.

1. Structural Conservation and Adaptation of the Bacterial Flagella Motor;BL Carroll;Biomolecules,2020

2. 3D cryo-EM imaging of bacterial flagella: Novel structural and mechanistic insights into cell motility;S Mondino;J Biol Chem,2022

3. Flagellar motility in bacteria structure and function of flagellar motor;H Terashima;Int Rev Cell Mol Biol,2008

4. Building a flagellum in biological outer space;LD Evans;Microb Cell,2014

5. Bacterial flagellar axial structure and its construction;K. Imada;Biophys Rev,2018

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