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Using Ustilago maydis as a Trojan Horse for In Situ Delivery of Maize Proteins
Published on: February 8, 2019
Regulation of Ustilago maydis dimorphism, sporulation, and pathogenic development by a transcription factor with a
María D García-Pedrajas1, Lourdes Baeza-Montañez, Scott E Gold
1Department of Plant Pathology, University of Georgia, Athens 30602-7274, USA.
Abstract:
In Ustilago maydis, the causal agent of corn smut, the morphological transition from yeast to filamentous growth is inextricably linked to pathogenicity; budding haploid cells are saprobic and, upon mating of compatible strains, the fungus converts to dikaryotic filamentous growth and obligate parasitism. The filamentous dikaryon proliferates in the host plant, inducing tumor formation and undergoing additional morphological changes that eventually result in the production of melanized diploid teliospores. In an attempt to identify new trans-acting factors that regulate morphogenesis in U. maydis, we searched for the presence of common binding sequences in the promoter region of a set of 37 genes downregulated in the filamentous form. Putative cis-acting regulatory sequences fitting the consensus binding site for the Aspergillus nidulans transcription factor StuA were identified in 13 of these genes. StuA is a member of the APSES transcription factors which contain a highly conserved DNA-binding domain with a basic helix-loop-helix (bHLH)-like structure. This class of proteins comprises critical regulators of developmental processes in ascomycete fungi such as dimorphic growth, mating, and sporulation but has not been studied in any fungus of the phylum Basidiomycota. A search for StuA orthologs in the U. maydis genome identified a single closely related protein that we designated Ust1. Deletion of ust1 in budding haploid wild-type and solopathogenic strains led to filamentous growth and abolished mating, gall induction, and, consequently, in planta teliosporogenesis. Furthermore, cultures of ust1 null mutants produced abundant thick-walled, highly pigmented cells resembling teliospores which are normally produced only in planta. We showed that ssp1, a gene highly induced in teliospores produced in the host, is also abundantly expressed in cultures of ust1 null mutants containing these pigmented cells. Our results are consistent with a major role for ust1 in regulating dimorphism, virulence, and the sporulation program in U. maydis.
Insights
A key regulator of fungal development, Ust1, controls the switch between yeast and filamentous growth in Ustilago maydis. Deleting Ust1 triggers filamentous growth and abnormal spore formation, impacting corn smut disease progression.
Area of Science:
- Molecular Biology
- Mycology
- Plant Pathology
Background:
- Ustilago maydis, the corn smut pathogen, exhibits dimorphic growth (yeast to filamentous) crucial for pathogenicity.
- Morphological transition is linked to mating, host colonization, tumor formation, and teliospore production.
- Regulatory factors governing this dimorphism in Basidiomycota remain largely uncharacterized.
Purpose of the Study:
- To identify novel trans-acting factors regulating morphogenesis in Ustilago maydis.
- To investigate the role of APSES transcription factors, previously unstudied in Basidiomycota, in U. maydis development.
Main Methods:
- Bioinformatic analysis of promoter regions of downregulated genes in filamentous U. maydis.
- Identification and deletion of a putative StuA ortholog, designated Ust1.
- Phenotypic analysis of ust1 deletion mutants in vitro and in planta.
Main Results:
- A U. maydis ortholog of Aspergillus nidulans StuA, named Ust1, was identified.
- Deletion of ust1 resulted in constitutive filamentous growth, abolished mating, and impaired virulence.
- ust1 null mutants produced abundant, pigmented, thick-walled cells resembling teliospores in culture.
Conclusions:
- Ust1 is a critical regulator of dimorphic switching, virulence, and sporulation in Ustilago maydis.
- Ust1 plays a central role in the pathogenicity and developmental program of the corn smut fungus.
- This study highlights the conserved function of APSES factors in fungal development across different phyla.
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