The phytopathogen Xanthomonas campestris senses and effluxes salicylic acid via a sensor HepR and an RND family efflux pump to promote virulence in host plants

Kai Song , Ruifang Li , Ying Cui , Bo Chen , Lian Zhou , Wenying Han , Bo-Le Jiang , Ya-Wen He

mLife ›› 2024, Vol. 3 ›› Issue (3) : 430 -444.

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mLife ›› 2024, Vol. 3 ›› Issue (3) : 430 -444. DOI: 10.1002/mlf2.12140
ORIGINAL RESEARCH

The phytopathogen Xanthomonas campestris senses and effluxes salicylic acid via a sensor HepR and an RND family efflux pump to promote virulence in host plants

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Abstract

Salicylic acid (SA) plays an essential role in plant defense against biotrophic and semi-biotrophic pathogens. Following pathogen recognition, SA biosynthesis dramatically increases at the infection site of the host plant. The manner in which pathogens sense and tolerate the onslaught of SA stress to survive in the plant following infection remains to be understood. The objective of this work was to determine how the model phytopathogen Xanthomonas campestris pv. campestris (Xcc) senses and effluxes SA during infection inside host plants. First, RNA-Seq analysis identified an SA-responsive operon Xcc4167–Xcc4171, encoding a MarR family transcription factor HepR and an RND (resistance-nodulation-cell division) family efflux pump HepABCD in Xcc. Electrophoretic mobility shift assays and DNase I footprint analysis revealed that HepR negatively regulated hepABCD expression by specifically binding to an AT-rich region of the promoter of the hepRABCD operon, Phep. Second, isothermal titration calorimetry and further genetic analysis suggest that HepR is a novel SA sensor. SA binding released HepR from its cognate promoter Phep and then induced the expression of hepABCD. Third, the RND family efflux pump HepABCD was responsible for SA efflux. The hepRABCD cluster was also involved in the regulation of culture pH and quorum sensing signal diffusible signaling factor turnover. Finally, the hepRABCD cluster was transcribed during the XC1 infection of Chinese radish and was required for the full virulence of Xcc in Chinese radish and cabbage. These findings suggest that the ability of Xcc to co-opt the plant defense signal SA to activate the multidrug efflux pump may have evolved to ensure Xcc survival and virulence in susceptible host plants.

Keywords

efflux / quorum sensing / salicylic acid / sensor / Xanthomonas campestris

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Kai Song, Ruifang Li, Ying Cui, Bo Chen, Lian Zhou, Wenying Han, Bo-Le Jiang, Ya-Wen He. The phytopathogen Xanthomonas campestris senses and effluxes salicylic acid via a sensor HepR and an RND family efflux pump to promote virulence in host plants. mLife, 2024, 3(3): 430-444 DOI:10.1002/mlf2.12140

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References

[1]

Ding P, Ding Y. Stories of salicylic acid: a plant defense hormone. Trends Plant Sci. 2020; 25:549–565.

[2]

Yalpani N, Leon J, Lawton MA, Raskin I. Pathway of salicylic acid biosynthesis in healthy and virus-inoculated tobacco. Plant Physiol. 1993; 103:315–321.

[3]

Smith-Becker J, Marois E, Huguet EJ, Midland SL, Sims JJ, Keen NT. Accumulation of salicylic acid and 4-hydroxybenzoic acid in phloem fluids of cucumber during systemic acquired resistance is preceded by a transient increase in phenylalanine ammonia-lyase activity in petioles and stems. Plant Physiol. 1998; 116:231–238.

[4]

Silverman P, Seskar M, Kanter D, Schweizer P, Metraux JP, Raskin I. Salicylic acid in rice (biosynthesis, conjugation, and possible role). Plant Physiol. 1995; 108:633–639.

[5]

Peng Y, Yang J, Li X, Zhang Y. Salicylic acid: biosynthesis and signaling. Annu Rev Plant Biol. 2021; 72:761–791.

[6]

Kumar S, Zavaliev R, Wu Q, Zhou Y, Cheng J, Dillard L, et al. Structural basis of NPR1 in activating plant immunity. Nature. 2022; 605:561–566.

[7]

van Butselaar T, Van den Ackerveken G. Salicylic acid steers the growth-immunity tradeoff. Trends Plant Sci. 2020; 25:566–576.

[8]

Yuan ZC, Edlind MP, Liu P, Saenkham P, Banta LM, Wise AA, et al. The plant signal salicylic acid shuts down expression of the vir regulon and activates quormone-quenching genes in Agrobacterium. Proc Natl Acad Sci USA. 2007; 104:11790–11795.

[9]

Anand A, Uppalapati SR, Ryu CM, Allen SN, Kang L, Tang Y, et al. Salicylic acid and systemic acquired resistance play a role in attenuating crown gall disease caused by Agrobacterium tumefaciens. Plant Physiol. 2008; 146:323–324.

[10]

Joshi JR, Burdman S, Lipsky A, Yariv S, Yedidia I. Plant phenolic acids affect the virulence of Pectobacterium aroidearum and P. carotovorum ssp. brasiliense via quorum sensing regulation. Mol Plant Pathol. 2016; 17:487–500.

[11]

Song K, Chen B, Cui Y, Zhou L, Chan KG, Zhang HY, et al. The plant defense signal salicylic acid activates the RpfB-dependent quorum sensing signal turnover via altering the culture and cytoplasmic pH in the phytopathogen Xanthomonas campestris. mBio. 2022; 13:e0364421.

[12]

Vicente JG, Holub EB. Xanthomonas campestris pv. campestris (cause of black rot of crucifers) in the genomic era is still a worldwide threat to brassica crops. Mol Plant Pathol. 2013; 14:2–18.

[13]

Timilsina S, Potnis N, Newberry EA, Liyanapathiranage P, Iruegas-Bocardo F, White FF, et al. Xanthomonas diversity, virulence and plant-pathogen interactions. Nat Rev Microbiol. 2020; 18:415–427.

[14]

Zhou L, Zhang LH, Cámara M, He YW. The DSF family of quorum sensing signals: diversity, biosynthesis, and turnover. TIM. 2017; 25:293–303.

[15]

Büttner D, Bonas U. Regulation and secretion of Xanthomonas virulence factors. FEMS Microbiol Rev. 2010; 34:107–133.

[16]

Mansfield J, Genin S, Magori S, Citovsky V, Sriariyanum M, Ronald P, et al. Top 10 plant pathogenic bacteria in molecular plant pathology. Mol Plant Pathol. 2012; 13:614–629.

[17]

Hugouvieux V, Barber CE, Daniels MJ. Entry of Xanthomonas campestris pv. campestris into hydathodes of Arabidopsis thaliana leaves: a system for studying early infection events in bacterial pathogenesis. Mol Plant-Microbe Interact. 1998; 11:537–543.

[18]

He YW, Wang C, Zhou L, Song H, Dow JM, Zhang LH. Dual signaling functions of the hybrid sensor kinase RpfC of Xanthomonas campestris involve either phosphorelay or receiver domain-protein interaction. J Biol Chem. 2006; 281:33414–33421.

[19]

Torres PS, Malamud F, Rigano LA, Russo DM, Marano MR, Castagnaro AP, et al. Controlled synthesis of the DSF cell-cell signal is required for biofilm formation and virulence in Xanthomonas campestris. Environ Microbiol. 2007; 9:2101–2109.

[20]

He YW, Deng Y, Miao Y, Chatterjee S, Tran TM, Tian J, et al. DSF-family quorum sensing signal-mediated intraspecies, interspecies, and inter-kingdom communication. TIM. 2023; 31:36–50.

[21]

Poole K, Srikumar R. Multidrug efflux in Pseudomonas aeruginosa: components, mechanisms and clinical significance. Curr Top Med Chem. 2001; 1:59–71.

[22]

Chen H, Yi C, Zhang J, Zhang W, Ge Z, Yang CG, et al. Structural insight into the oxidation-sensing mechanism of the antibiotic resistance of regulator MexR. EMBO Rep. 2010; 11:685–690.

[23]

Dolan KT, Duguid EM, He C. Crystal structures of SlyA protein, a master virulence regulator of Salmonella, in free and DNA-bound states. J Biol Chem. 2011; 286:22178–22185.

[24]

Will WR, Brzovic P, Le Trong I, Stenkamp RE, Lawrenz MB, Karlinsey JE, et al. The evolution of SlyA/RovA transcription factors from repressors to countersilencers in Enterobacteriaceae. mBio. 2019; 10:e0000919.

[25]

Chen B, Li RF, Zhou L, Qiu JH, Song K, Tang JL, et al. The phytopathogen Xanthomonas campestris utilizes the divergently transcribed pobA/pobR locus for 4-hydroxybenzoic acid recognition and degradation to promote virulence. Mol Microbiol. 2020; 114:870–886.

[26]

Ravirala RS, Barabote RD, Wheeler DM, Reverchon S, Tatum O, Malouf J, et al. Efflux pump gene expression in Erwinia chrysanthemi is induced by exposure to phenolic acids. Mol Plant-Microbe Interact. 2007; 20:313–320.

[27]

Klessig DF, Tian M, Choi HW. Multiple targets of salicylic acid and its derivatives in plants and animals. Front Immunol. 2016; 7:206.

[28]

Buchmeier N, Bossie S, Chen CY, Fang FC, Guiney DG, Libby SJ. SlyA, a transcriptional regulator of Salmonella typhimurium, is required for resistance to oxidative stress and is expressed in the intracellular environment of macrophages. Infect Immun. 1997; 65:3725–3730.

[29]

Nair BM, Cheung Jr. KJ, Griffith A, Burns JL. Salicylate induces an antibiotic efflux pump in Burkholderia cepacia complex genomovar III (B. cenocepacia). J Clin Invest. 2004; 113:464–473.

[30]

Joshi JR, Khazanov N, Khadka N, Charkowski AO, Burdman S, Carmi N, et al. Direct binding of salicylic acid to Pectobacterium N-acyl-homoserine lactone synthase. ACS Chem Biol. 2020; 15:1883–1891.

[31]

Alvarez-Ortega C, Olivares J, Martínez JL. RND multidrug efflux pumps: what are they good for? Front Microbiol. 2013; 4:7.

[32]

Alcalde-Rico M, Hernando-Amado S, Blanco P, Martínez JL. Multidrug efflux pumps at the crossroad between antibiotic resistance and bacterial virulence. Front Microbiol. 2016; 7:1483.

[33]

Ichinose Y, Nishimura T, Harada M, Kashiwagi R, Yamamoto M, Noutoshi Y, et al. Role of two sets of RND-type multidrug efflux pump transporter genes, mexAB-oprM and mexEF-oprN, in virulence of Pseudomonas syringae pv. tabaci 6605. Plant Pathol J. 2020; 36:148–156.

[34]

Stoitsova SO, Braun Y, Ullrich MS, Weingart H. Characterization of the RND-type multidrug efflux pump MexAB-OprM of the plant pathogen Pseudomonas syringae. Appl Environ Microbiol. 2008; 74:3387–3393.

[35]

Schaffner SH, Lee AV, Pham MTN, Kassaye BB, Li H, Tallada S, et al. Extreme acid modulates fitness trade-offs of multidrug efflux pumps MdtEF-TolC and AcrAB-TolC in Escherichia coli K-12. Appl Environ Microbiol. 2021; 87:e0072421.

[36]

Wang Y, Cen XF, Zhao GP, Wang J. Characterization of a new GlnR binding box in the promoter of amtB in Streptomyces coelicolor inferred a PhoP/GlnR competitive binding mechanism for transcriptional regulation of amtB. J Bacteriol. 2012; 194:5237–5244.

[37]

Zhou L, Wang JY, Wang J, Poplawsky A, Lin S, Zhu B, et al. The diffusible factor synthase XanB2 is a bifunctional chorismatase that links the shikimate pathway to ubiquinone and xanthomonadins biosynthetic pathways. Mol Microbiol. 2013; 87:80–93.

[38]

Chen B, Li R-F, Zhou L, Song K, Poplawsky AR, He Y-W. The phytopathogen Xanthomonas campestris scavenges hydroxycinnamic acids in planta via the hca cluster to increase virulence on its host plant. Phytopathol Res. 2022; 4:12.

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2024 The Author(s). mLife published by John Wiley & Sons Australia, Ltd on behalf of Institute of Microbiology, Chinese Academy of Sciences.

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