A Chemotaxis-Like Pathway of Azorhizobium caulinodans Controls Flagella-Driven Motility, Which Regulates Biofilm Formation, Exopolysaccharide Biosynthesis, and Competitive Nodulation

Author:

Liu Wei1,Sun Yu1,Shen Rimin12,Dang Xiaoxiao1,Liu Xiaolin1,Sui Fu1,Li Yan1,Zhang Zhenpeng1,Alexandre Gladys3,Elmerich Claudine4,Xie Zhihong1ORCID

Affiliation:

1. Key Laboratory of Coastal Biology and Bioresource Utilization, Yantai Institute of Coastal Zone Research, Chinese Academy of Sciences, Yantai, China;

2. Shanxi Agricultural University, Taigu, Shanxi, China;

3. Biochemistry, Cellular and Molecular Biology Department, University of Tennessee, Knoxville, U.S.A.; and

4. Institut Pasteur, Paris, France

Abstract

The genome of the Azorhizobium caulinodans ORS571 contains a unique chemotaxis gene cluster (che) including five chemotaxis genes: cheA, cheW, cheY1, cheB, and cheR. Analysis of the role of the chemotaxis cluster of A. caulinodans using deletion mutant strains revealed that CheA or the Che signaling pathway controls chemotaxis behavior and flagella-driven motility and plays important roles in formation of biofilms and production of extracellular polysaccharides (EPS). Furthermore, the deletion mutants (ΔcheA and ΔcheA-R) were defective in competitive adsorption and colonization on the root surface of host plants. In addition, a functional CheA or Che pathway promoted competitive nodulation on roots and stems. Interestingly, a nonflagellated mutant, ΔfliM, displayed a phenotype highly similar to that of the ΔcheA or ΔcheA-R mutant strains. These findings suggest that through controlling flagella-driven motility behavior, the chemotaxis signaling pathway in A. caulinodans coordinates biofilm formation, EPS, and competitive colonization and nodulation.

Publisher

Scientific Societies

Subject

Agronomy and Crop Science,General Medicine,Physiology

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