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The Contributions to Virulence of the Effectors Eop1 and DspE Differ Between Two Clades of Erwinia tracheiphila Strains.

Authors :
Olawole OI
Liu Q
Chen C
Gleason ML
Beattie GA
Source :
Molecular plant-microbe interactions : MPMI [Mol Plant Microbe Interact] 2021 Dec; Vol. 34 (12), pp. 1399-1408. Date of Electronic Publication: 2021 Dec 07.
Publication Year :
2021

Abstract

Strains of Erwinia tracheiphila, causal agent of bacterial wilt of cucurbits, are divided into distinct clades. Et-melo clade strains wilt Cucumis spp. but not Cucurbita spp., thus exhibiting host specificity, whereas Et-C1 clade strains wilt Cucurbita spp. more rapidly than Cucumis melo , thus exhibiting a host preference. This study investigated the contribution of the effector proteins Eop1 and DspE to E. tracheiphila pathogenicity and host adaptation. Loss of eop1 did not enable Et-melo strains to infect squash ( Cucurbita pepo ) or an Et-C1 strain to induce a more rapid wilt of muskmelon ( Cucumis melo ), indicating that Eop1 did not function in host specificity or preference as in the related pathogen E. amylovora. However, overexpression of eop1 from Et-melo strain MDCuke but not from Et-C1 strain BHKY increased the virulence of a BHKY eop1 deletion mutant on muskmelon, demonstrating that the Eop1 variants in the two clades are distinct in their virulence functions. Loss of dspE from Et-melo strains reduced but did not eliminate virulence on hosts muskmelon and cucumber, whereas loss of dspE from an Et-C1 strain eliminated pathogenicity on hosts squash, muskmelon, and cucumber. Thus, the centrality of DspE to virulence differs in the two clades. Et-melo mutants lacking the chaperone DspF exhibited similar virulence to mutants lacking DspE, indicating that DspF is the sole chaperone for DspE in E. tracheiphila , unlike in E. amylovora . Collectively, these results provide the first functional evaluation of effectors in E. tracheiphila and demonstrate clade-specific differences in the roles of Eop1 and DspE.[Formula: see text] Copyright © 2021 The Author(s). This is an open access article distributed under the CC BY 4.0 International license.

Details

Language :
English
ISSN :
0894-0282
Volume :
34
Issue :
12
Database :
MEDLINE
Journal :
Molecular plant-microbe interactions : MPMI
Publication Type :
Academic Journal
Accession number :
34505816
Full Text :
https://doi.org/10.1094/MPMI-06-21-0149-R