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Unlocking the genetic arsenal of Xanthomonas arboricola: new insights into taxonomic classification, pathogenicity and adaptation beyond the effectorome

dc.citation.titleBMC Genomics
dc.citation.volume27 (565)
dc.creatorDe A. B. Assis, Renata
dc.creatorVarani, Alessandro M.
dc.creatorShands, Aidan C.
dc.creatorSagawa, Cintia H. D.
dc.creatorPatané, José S. L.
dc.creatorSetubal, João C.
dc.creatorZaini, Paulo A.
dc.creatorAlmeida, Nalvo Franco
dc.creatorDe Souza, Robson Francisco
dc.creatorGarcía Machado, Camila Carrião
dc.creatorOrellano, Elena G.
dc.creatorAdaskaveg, James E.
dc.creatorDandekar, Abhaya M.
dc.creatorMoreira, Leandro Marcio
dc.date.accessioned2026-09-14T21:05:00Z
dc.date.issued2026-05-06
dc.description.abstractBackground: Xanthomonas arboricola (Xar) is a phytopathogenic bacterial species responsible for economically significant diseases in a wide range of plants, including agricultural, ornamental, and forest species. This study aimed to investigate the genomic basis of host specificity, adaptation, and virulence in Xar through comprehensive comparative genomics. Results: A total of 177 genomes from nine Xar pathovars were analyzed for evolutionary relationships and effector repertoires. From these, 30 genetically diverse genomes were selected for in-depth comparison. Core, unique, and shared genes were identified and functionally annotated, focusing on their potential roles in adaptation and pathogenicity. Nineteen of the genomes were originally misclassified and did not belong to the Xar species. The remaining 158 genomes clustered into three major clades: I (Xar. pv. juglandis), II (Xar. pv. pruni+Xar. pv. corylina), and III (miscellaneous Xar). Clades I and II exhibited high effector diversity, ranging from 38 to 54 genes, with Xar. pv. corylina harboring the most. In contrast, Clade III genomes had significantly fewer effectors, with subclade IIIa containing only 5 and IIIb up to 15. Only one TAL effector was found in nine Xar. pv. corylina strains (with no conserved RVD patterns) and in both Xar. pv. guizotiae strains (up to 31 RVDs identified). Phylogenomic and effectorome analyses revealed potential genomic islands acquired via horizontal gene transfer, encoding metal metabolism genes, type II/IV secretion systems, and DNA modification enzymes. Additionally, several gene losses were observed: 19 genomes lacked flagellar assembly genes, 15 lacked nitrate metabolism genes, and 9 lacked cellulose biosynthesis and secretion genes. In contrast, all genomes possessed a lasso peptide biosynthetic cluster, highlighting recurrent genomic rearrangements through insertions and deletions. Conclusions: This study provides a refined understanding of the genetic diversity and adaptive mechanisms in X. arboricola, emphasizing gene gain/loss events as central to pathovar-specific metabolic and virulence traits. These findings identify novel molecular markers with potential applications in diagnostics and targeted disease control strategies. In particular, the characterization of conserved and lineage-specific effector repertoires provides a framework to inform strategies for breeding resistance through the identification of candidate targets for durable host immunity.
dc.description.filFil: De A. B. Assis, Renata. Federal University of Ouro Preto. Center of Research in Biological Science; Brazil.
dc.description.filFil: De A. B. Assis, Renata. University of California. Department of Plant Sciences; United States of America.
dc.description.filFil: Varani, Alessandro M. São Paulo State University. College of Agricultural and Veterinary Sciences. Department of Agricultural and Environmental Biotechnology; Brazil.
dc.description.filFil: Shands, Aidan C. University of California. Microbiology & Plant Pathology Department; United States of America.
dc.description.filFil: Sagawa, Cintia H. D. University of California. Department of Plant Sciences; United States of America.
dc.description.filFil: Patané, José S. L. Instituto Butantan. Laboratório Especial de Ciclo Celular; Brazil.
dc.description.filFil: Setubal, João C. University of Sao Paulo. Chemistry Institute. Department of Biochemistry; Brazil.
dc.description.filFil: Zaini, Paulo A. University of California. Department of Plant Sciences; United States of America.
dc.description.filFil: Almeida, Nalvo Franco. Federal University of Mato Grosso do Sul. School of Computing; Brazil.
dc.description.filFil: De Souza, Robson Francisco. University of São Paulo. Institute of Biomedical Science. Department of Microbiology; Brazil.
dc.description.filFil: García Machado, Camila Carrião. Federal University of Ouro Preto. Center of Research in Biological Science; Brazil.
dc.description.filFil: García Machado, Camila Carrião. Federal University of Ouro Preto. Institute of Exact and Biological Science. Department of Biological Science; Brazil.
dc.description.filFil: Orellano, Elena G. Universidad Nacional de Rosario. Facultad de Ciencias Bioquímicas y Farmacéuticas. Instituto de Biología Molecular y Celular de Rosario (IBR-CONICET); Argentina.
dc.description.filFil: Adaskaveg, James E. University of California. Microbiology & Plant Pathology Department; United States of America.
dc.description.filFil: Dandekar, Abhaya M. University of California. Department of Plant Sciences; United States of America.
dc.description.filFil: Moreira, Leandro Marcio. Federal University of Ouro Preto. Center of Research in Biological Science; Brazil.
dc.description.filFil: Moreira, Leandro Marcio. Federal University of Ouro Preto. Institute of Exact and Biological Science. Department of Biological Science; Brazil.
dc.description.filFil: Moreira, Leandro Marcio. Universidade Federal de Ouro Preto. Instituto de Ciências Exatas e Biológicas. Departamento de Ciências Biológicas; Brazil.
dc.description.sponsorshipCalifornia Walnut Board: LMM 305552/2025-2
dc.description.versionpeerreviewed
dc.format.extent1-20
dc.identifier.citationAssis, R.d.A.B., Varani, A.M., Shands, A.C. et al. Unlocking the genetic arsenal of Xanthomonas arboricola: new insights into taxonomic classification, pathogenicity and adaptation beyond the effectorome. BMC Genomics 27, 565 (2026). https://doi.org/10.1186/s12864-026-12916-3
dc.identifier.issn1471-2164
dc.identifier.urihttps://hdl.handle.net/2133/33959
dc.language.isoen
dc.publisherBioMed Central
dc.relation.publisherversionhttps://doi.org/10.1186/s12864-026-12916-3
dc.relation.publisherversionhttps://link.springer.com/article/10.1186/s12864-026-12916-3
dc.rightsopenAccess
dc.rights.holderDe A. B. Assis, Renata
dc.rights.holderVarani, Alessandro M.
dc.rights.holderShands, Aidan C.
dc.rights.holderSagawa, Cintia H. D.
dc.rights.holderPatané, José S. L.
dc.rights.holderSetubal, João C.
dc.rights.holderZaini, Paulo A.
dc.rights.holderAlmeida, Nalvo Franco
dc.rights.holderDe Souza, Robson Francisco
dc.rights.holderGarcía Machado, Camila Carrião
dc.rights.holderOrellano, Elena G.
dc.rights.holderAdaskaveg, James E.
dc.rights.holderDandekar, Abhaya M.
dc.rights.holderMoreira, Leandro Marcio
dc.rights.textAttribution-NonCommercial-NoDerivatives 4.0 Internationalen
dc.rights.urihttp://creativecommons.org/licenses/by-nc-nd/4.0/
dc.subjectHorizontal gene transfer
dc.subjectPathogen host interaction
dc.subjectVirulence
dc.subjectAdaptation
dc.subjectEffectorome
dc.subjectXanthomonas arboricola
dc.subjectComparative genomics
dc.titleUnlocking the genetic arsenal of Xanthomonas arboricola: new insights into taxonomic classification, pathogenicity and adaptation beyond the effectorome
dc.typearticulo
dc.type.collectionarticulo
dc.type.versionpublishedVersion

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