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A single gene in Fusarium oxysporum limits host range.

Identifieur interne : 000224 ( Main/Exploration ); précédent : 000223; suivant : 000225

A single gene in Fusarium oxysporum limits host range.

Auteurs : Jiming Li [Pays-Bas] ; Like Fokkens [Pays-Bas] ; Martijn Rep [Pays-Bas]

Source :

RBID : pubmed:33146465

Abstract

Fusarium oxysoporum f. sp. radicis-cucumerinum (Forc) is able to cause disease in cucumber, melon, and watermelon, while F. oxysporum f. sp. melonis (Fom) can only infect melon plants. Earlier research showed that mobile chromosomes in Forc and Fom determine the difference in host range between Forc and Fom. By closely comparing these pathogenicity chromosomes combined with RNA-sequencing data, we selected 11 candidate genes that we tested for involvement in the difference in host range between Forc and Fom. One of these candidates is a putative effector gene on the Fom pathogenicity chromosome that has nonidentical homologs on the Forc pathogenicity chromosome. Four independent Forc transformants with this gene from Fom showed strongly reduced or no pathogenicity towards cucumber, while retaining pathogenicity towards melon and watermelon. This suggests that the protein encoded by this gene is recognized by an immune receptor in cucumber plants. This is the first time that a single gene has been demonstrated to determine a difference in host specificity between formae speciales of F. oxysporum.

DOI: 10.1111/mpp.13011
PubMed: 33146465


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<div type="abstract" xml:lang="en">Fusarium oxysoporum f. sp. radicis-cucumerinum (Forc) is able to cause disease in cucumber, melon, and watermelon, while F. oxysporum f. sp. melonis (Fom) can only infect melon plants. Earlier research showed that mobile chromosomes in Forc and Fom determine the difference in host range between Forc and Fom. By closely comparing these pathogenicity chromosomes combined with RNA-sequencing data, we selected 11 candidate genes that we tested for involvement in the difference in host range between Forc and Fom. One of these candidates is a putative effector gene on the Fom pathogenicity chromosome that has nonidentical homologs on the Forc pathogenicity chromosome. Four independent Forc transformants with this gene from Fom showed strongly reduced or no pathogenicity towards cucumber, while retaining pathogenicity towards melon and watermelon. This suggests that the protein encoded by this gene is recognized by an immune receptor in cucumber plants. This is the first time that a single gene has been demonstrated to determine a difference in host specificity between formae speciales of F. oxysporum.</div>
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<Reference>
<Citation>Biju, V.C., Fokkens, L., Houterman, P.M., Rep, M. and Cornelissen, B.J.C. (2017) Multiple evolutionary trajectories have led to the emergence of races in Fusarium oxysporum f. sp. lycopersici In: Cullen, D. (Ed.) Applied and Environmental Microbiology, 83, e02548-16.</Citation>
</Reference>
<Reference>
<Citation>Catanzariti, A.-M., Dodds, P.N., Lawrence, G.J., Ayliffe, M.A. and Ellis, J.G. (2006) Haustorially expressed secreted proteins from flax rust are highly enriched for avirulence elicitors. The Plant Cell, 18, 243-256.</Citation>
</Reference>
<Reference>
<Citation>Chisholm, S.T., Coaker, G., Day, B. and Staskawicz, B.J. (2006) Host-microbe interactions: shaping the evolution of the plant immune response. Cell, 124, 803-814.</Citation>
</Reference>
<Reference>
<Citation>van Dam, P., Fokkens, L., Ayukawa, Y., van der Gragt, M., ter Horst, A., Brankovics, B. et al. (2017) A mobile pathogenicity chromosome in Fusarium oxysporum for infection of multiple cucurbit species. Scientific Reports, 7, 9042.</Citation>
</Reference>
<Reference>
<Citation>van Dam, P., Fokkens, L., Schmidt, S.M., Linmans, J.H.J., Kistler, H.C., Ma, L.-J. et al. (2016) Effector profiles distinguish formae speciales of Fusarium oxysporum. Environmental Microbiology, 18, 4087-4102.</Citation>
</Reference>
<Reference>
<Citation>Delcher, A.L. (2002) Fast algorithms for large-scale genome alignment and comparison. Nucleic Acids Research, 30, 2478-2483.</Citation>
</Reference>
<Reference>
<Citation>van der Does, H.C. and Rep, M. (2007) Virulence genes and the evolution of host specificity in plant-pathogenic fungi. Molecular Plant-Microbe Interactions, 20, 1175-1182.</Citation>
</Reference>
<Reference>
<Citation>Edel-Hermann, V. and Lecomte, C. (2019) Current status of Fusarium oxysporum formae speciales and races. Phytopathology, 109, 512-530.</Citation>
</Reference>
<Reference>
<Citation>Gawehns, F., Ma, L., Bruning, O., Houterman, P.M., Boeren, S., Cornelissen, B.J.C. et al. (2015) The effector repertoire of Fusarium oxysporum determines the tomato xylem proteome composition following infection. Frontiers in Plant Science, 6, 967.</Citation>
</Reference>
<Reference>
<Citation>Gordon, T.R. and Martyn, R.D. (1997) The evolutionary biology of Fusarium oxysporum. Annual Review of Phytopathology, 35, 111-128.</Citation>
</Reference>
<Reference>
<Citation>Hoff, K.J., Lomsadze, A., Borodovsky, M. and Stanke, M. (2019) Whole-genome annotation with BRAKER. Methods in Molecular Biology, 1962, 65-95.</Citation>
</Reference>
<Reference>
<Citation>Houterman, P.M., Cornelissen, B.J.C. and Rep, M. (2008) Suppression of plant resistance gene-based immunity by a fungal effector. PLoS Pathogens, 4, e1000061.</Citation>
</Reference>
<Reference>
<Citation>Houterman, P.M., Ma, L., van Ooijen, G., de Vroomen, M.J., Cornelissen, B.J.C., Takken, F.L.W. et al. (2009) The effector protein Avr2 of the xylem-colonizing fungus Fusarium oxysporum activates the tomato resistance protein I-2 intracellularly. The Plant Journal, 58, 970-978.</Citation>
</Reference>
<Reference>
<Citation>Houterman, P.M., Speijer, D., Dekker, H.L., Koster, D.E.C.G., Cornelissen, B.J. and Rep, M. (2007) The mixed xylem sap proteome of Fusarium oxysporum-infected tomato plants. Molecular Plant Pathology, 8, 215-221.</Citation>
</Reference>
<Reference>
<Citation>Inoue, Y., Vy, T.T.P., Yoshida, K., Asano, H., Mitsuoka, C., Asuke, S. et al. (2017) Evolution of the wheat blast fungus through functional losses in a host specificity determinant. Science, 357, 80-83.</Citation>
</Reference>
<Reference>
<Citation>Li, J.-M., Fokkens, L., van Dam, P. and Rep, M. (2020) Related mobile pathogenicity chromosomes in Fusarium oxysporum determine host range on cucurbits. Molecular Plant Pathology, 21, 761-776.</Citation>
</Reference>
<Reference>
<Citation>Ma, L.-J., van der Does, H.C., Borkovich, K.A., Coleman, J.J., Daboussi, M.-J., Di Pietro, A. et al. (2010) Comparative genomics reveals mobile pathogenicity chromosomes in Fusarium. Nature, 464, 367-373.</Citation>
</Reference>
<Reference>
<Citation>Ma, L.-J., Shea, T., Young, S., Zeng, Q. and Kistler, H.C. (2014) Genome sequence of Fusarium oxysporum f. sp. melonis strain NRRL 26406, a fungus causing wilt disease on melon. Genome Announcements, 2, e00730-14.</Citation>
</Reference>
<Reference>
<Citation>Ma, L., Houterman, P.M., Gawehns, F., Cao, L., Sillo, F., Richter, H. et al. (2015) The AVR2-SIX5 gene pair is required to activate I-2-mediated immunity in tomato. New Phytologist, 208, 507-518.</Citation>
</Reference>
<Reference>
<Citation>Michielse, C.B. and Rep, M. (2009) Pathogen profile update: Fusarium oxysporum. Molecular Plant Pathology, 10, 311-324.</Citation>
</Reference>
<Reference>
<Citation>Mysore, K.S. and Ryu, C.-M. (2004) Nonhost resistance: how much do we know? Trends in Plant Science, 9, 97-104.</Citation>
</Reference>
<Reference>
<Citation>Niu, X., Zhao, X., Ling, K.-S., Levi, A., Sun, Y. and Fan, M. (2016) The FonSIX6 gene acts as an avirulence effector in the Fusarium oxysporum f. sp. niveum-watermelon pathosystem. Scientific Reports, 6, 28146.</Citation>
</Reference>
<Reference>
<Citation>Pietro, A.D., Madrid, M.P., Caracuel, Z., Delgado-Jarana, J. and Roncero, M.I.G. (2003) Fusarium oxysporum: exploring the molecular arsenal of a vascular wilt fungus. Molecular Plant Pathology, 4, 315-325.</Citation>
</Reference>
<Reference>
<Citation>Rep, M., Van Der Does, H.C., Meijer, M., Van Wijk, R., Houterman, P.M., Dekker, H.L. et al. (2004) A small, cysteine-rich protein secreted by Fusarium oxysporum during colonization of xylem vessels is required for I-3-mediated resistance in tomato. Molecular Microbiology, 53, 1373-1383.</Citation>
</Reference>
<Reference>
<Citation>de Sain, M. and Rep, M. (2015) The role of pathogen-secreted proteins in fungal vascular wilt diseases. International Journal of Molecular Sciences, 16, 23970-23993.</Citation>
</Reference>
<Reference>
<Citation>Schmidt, S.M., Houterman, P.M., Schreiver, I., Ma, L., Amyotte, S., Chellappan, B. et al. (2013) MITEs in the promoters of effector genes allow prediction of novel virulence genes in Fusarium oxysporum. BMC Genomics, 14, 119.</Citation>
</Reference>
<Reference>
<Citation>Schmidt, S.M., Lukasiewicz, J., Farrer, R., van Dam, P., Bertoldo, C. and Rep, M. (2016) Comparative genomics of Fusarium oxysporum f. sp. melonis reveals the secreted protein recognized by the Fom-2 resistance gene in melon. New Phytologist, 209, 307-318.</Citation>
</Reference>
<Reference>
<Citation>Schulze-Lefert, P. and Panstruga, R. (2011) A molecular evolutionary concept connecting nonhost resistance, pathogen host range, and pathogen speciation. Trends in Plant Science, 16, 117-125.</Citation>
</Reference>
<Reference>
<Citation>Takken, F. and Rep, M. (2010) The arms race between tomato and Fusarium oxysporum. Molecular Plant Pathology, 11, 309-314.</Citation>
</Reference>
<Reference>
<Citation>Takken, F.L.W., van Wijk, R., Michielse, C.B., Houterman, P.M., Ram, A.F.J. and Cornelissen, B.J.C. (2004) A one-step method to convert vectors into binary vectors suited for Agrobacterium-mediated transformation. Current Genetics, 45, 242-248.</Citation>
</Reference>
<Reference>
<Citation>Vlaardingerbroek, I., Beerens, B., Rose, L., Fokkens, L., Cornelissen, B.J.C. and Rep, M. (2016a) Exchange of core chromosomes and horizontal transfer of lineage-specific chromosomes in Fusarium oxysporum. Environmental Microbiology, 18, 3702-3713.</Citation>
</Reference>
<Reference>
<Citation>Vlaardingerbroek, I., Beerens, B., Schmidt, S.M., Cornelissen, B.J.C. and Rep, M. (2016b) Dispensable chromosomes in Fusarium oxysporum f. sp. lycopersici. Molecular Plant Pathology, 17, 1455-1466.</Citation>
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