Literature DB >> 25862648

Membrane transporters in self resistance of Cercospora nicotianae to the photoactivated toxin cercosporin.

Aydin Beseli1, Alongkorn Amnuaykanjanasin2, Sonia Herrero1,3, Elizabeth Thomas1, Margaret E Daub4.   

Abstract

The goal of this work is to characterize membrane transporter genes in Cercospora fungi required for autoresistance to the photoactivated, active-oxygen-generating toxin cercosporin they produce for infection of host plants. Previous studies implicated a role for diverse membrane transporters in cercosporin resistance. In this study, transporters identified in a subtractive cDNA library between a Cercospora nicotianae wild type and a cercosporin-sensitive mutant were characterized, including two ABC transporters (CnATR2, CnATR3), an MFS transporter (CnMFS2), a uracil transporter, and a zinc transport protein. Phylogenetic analysis showed that only CnATR3 clustered with transporters previously characterized to be involved in cercosporin resistance. Quantitative RT-PCR analysis of gene expression under conditions of cercosporin toxicity, however, showed that only CnATR2 was upregulated, thus this gene was selected for further characterization. Transformation and expression of CnATR2 in the cercosporin-sensitive fungus Neurospora crassa significantly increased cercosporin resistance. Targeted gene disruption of CnATR2 in the wild type C. nicotianae, however, did not decrease resistance. Expression analysis of other transporters in the cnatr2 mutant under conditions of cercosporin toxicity showed significant upregulation of the cercosporin facilitator protein gene (CFP), encoding an MFS transporter previously characterized as playing an important role in cercosporin autoresistance in Cercospora species. We conclude that cercosporin autoresistance in Cercospora is mediated by multiple genes, and that the fungus compensates for mutations by up-regulation of other resistance genes. CnATR2 may be a useful gene, alone or in addition to other known resistance genes, for engineering Cercospora resistance in crop plants.

Entities:  

Keywords:  ABC transporter; CRG1; CnATR1; CnCFP; MFS transporter; Perylenequinone; Photosensitizer resistance; Targeted gene disruption

Mesh:

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Year:  2015        PMID: 25862648     DOI: 10.1007/s00294-015-0486-x

Source DB:  PubMed          Journal:  Curr Genet        ISSN: 0172-8083            Impact factor:   3.886


  48 in total

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6.  Characterization of Cercospora nicotianae Hypothetical Proteins in Cercosporin Resistance.

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9.  Engineering Cercospora disease resistance via expression of Cercospora nicotianae cercosporin-resistance genes and silencing of cercosporin production in tobacco.

Authors:  Elizabeth Thomas; Sonia Herrero; Hayde Eng; Nafisa Gomaa; Jeff Gillikin; Roslyn Noar; Aydin Beseli; Margaret E Daub
Journal:  PLoS One       Date:  2020-03-16       Impact factor: 3.240

Review 10.  Phytopathogenic Cercosporoid Fungi-From Taxonomy to Modern Biochemistry and Molecular Biology.

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  10 in total

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