A bacterial type III effector targets plant vesicle‐associated membrane proteins

Author:

Wang Keke1,Yu Wenjia12,Yu Gang1ORCID,Zhang Lu12,Xian Liu12,Wei Yali12,Perez‐Sancho Jessica1,Xue Hao12,Rufian Jose S.1ORCID,Zhuang Haiyan1,Kwon Chian3,Macho Alberto P.1ORCID

Affiliation:

1. Shanghai Center for Plant Stress Biology, CAS Center for Excellence in Molecular Plant Sciences Chinese Academy of Sciences Shanghai China

2. University of the Chinese Academy of Sciences Beijing China

3. Department of Molecular Biology Dankook University Cheonan South Korea

Abstract

AbstractThe soilborne bacterial pathogen Ralstonia solanacearum is one of the most destructive plant pathogens worldwide, and its infection process involves the manipulation of numerous plant cellular functions. In this work, we found that the R. solanacearum effector protein RipD partially suppressed different levels of plant immunity triggered by R. solanacearum elicitors, including specific responses triggered by pathogen‐associated molecular patterns and secreted effectors. RipD localized in different subcellular compartments in plant cells, including vesicles, and its vesicular localization was enriched in cells undergoing R. solanacearum infection, suggesting that this specific localization may be particularly relevant during infection. Among RipD‐interacting proteins, we identified plant vesicle‐associated membrane proteins (VAMPs). We also found that overexpression of Arabidopsis thaliana VAMP721 and VAMP722 in Nicotiana benthamiana leaves promoted resistance to R. solanacearum, and this was abolished by the simultaneous expression of RipD, suggesting that RipD targets VAMPs to contribute to R. solanacearum virulence. Among proteins secreted in VAMP721/722‐containing vesicles, CCOAOMT1 is an enzyme required for lignin biosynthesis, and mutation of CCOAOMT1 enhanced plant susceptibility to R. solanacearum. Altogether our results reveal the contribution of VAMPs to plant resistance against R. solanacearum and their targeting by a bacterial effector as a pathogen virulence strategy.

Funder

Chinese Academy of Sciences

Recruitment Program of Global Experts

Publisher

Wiley

Subject

Plant Science,Soil Science,Agronomy and Crop Science,Molecular Biology

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