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Koehler, A. M.

Publications and source records attributed to Koehler, A. M..

3 recordsLinked to original sources

Characterization of velvet DNA-binding region by Aspergillus nidulans VelB

Velvet regulators characterized by a conserved velvet domain function as a central hub that coordinately govern fungal development, secondary metabolism, stress adaptation, and pathogenicity. The velvet domain is organized into an N-terminal DNA-binding region of approximately 30 amino acids and a C-terminal dimerization region of roughly 100 amino acids. In this study, Aspergillus nidulans VelB was used as a paradigm to systematically dissect the velvet DNA-binding region. Three arginine residues R71, R80, and R81 in the N-terminal velvet domain indispensable for VelB function were identified through alanine-scanning mutagenesis of 15 conserved residues. Alanine substitutions at these positions caused severe defects in long-term spore viability, sexual development, and secondary metabolism. Further comparative characterization of electrostatic potential dynamics pre- and post-mutation revealed that the three individual substitutions markedly attenuate local electrostatic potential across the DNA-binding interface. Notably, these mutations drive comprehensive remodeling of the proteins electrostatic properties, whereby electrostatic perturbations propagate across the entire protein exterior. Analysis of 4,999 velvet-domain sequences across the fungal kingdom revealed extraordinary conservation of these positions: arginine was present at position 71 in 85% of sequences, at position 80 in 91%, and at position 81 in 84%. Cross-kingdom complementation experiments further demonstrated that the wild-type velvet DNA-binding region from Capsaspora owczarzaki, a unicellular holozoan lacking the equivalent of R71, failed to rescue the A. nidulans velB deletion phenotype, whereas introduction of arginine at this position conferred substantial functional restoration. These findings establish that a cluster of conserved arginine residues generates the positive electrostatic surface potential required for velvet-DNA interaction, and define the molecular basis of DNA recognition by this ancient family of fungal transcription factors.

microbiology↗

The VelB intrinsically disordered domain promotes selective heterodimer formation of velvet domain regulatory proteins for fungal development

Fungi possess several transcription factors with a characteristic velvet domain for DNA-binding and homo- or heterodimerization, which is structurally similar to the mammalian NF-B Rel homology domain. Velvet dimers control fungal development, virulence and mycotoxin formation. VelB is the only regulator, which carries an intrinsically disordered domain (IDD) within the velvet domain. The IDD as well as the positioning within VelB is conserved in the fungal kingdom. Intrinsically disordered regions contribute to transcription activation and DNA binding and frequently appear in eukaryotic transcription factors. The VelB IDD provides selective heterodimerization as well as protein stability control. The IDD is not required for the formation of the VelB-VeA heterodimer of Aspergillus nidulans or Verticillium dahliae, but promotes the formation of the VelB-VosA heterodimer. The IDD destabilizes VelB single molecules and also balances its distribution and ratio between both velvet heterodimers. These balances contribute to control appropriate mycotoxin production and sexual development. Herewith, the VelB IDD represents a novel control mechanism of velvet protein stability and heterodimer formation for precise priming of fungal development.

molecular biology↗

The Aspergillus nidulans velvet domain containing transcription factor VeA is shuttled from cytoplasm into nucleus during vegetative growth and stays there for sexual development, but has to return into cytoplasm for asexual development

Survival of multicellular organisms requires the coordinated interplay between networks regulating gene expression and controlled intracellular transport of respective regulators. Velvet domain proteins are fungal transcription factors, which form various heterodimers and play key roles in controlling early developmental decisions towards more either asexual or sexual differentiation. VeA is the central subunit of the trimeric velvet complex VelB-VeA-LaeA, which links transcriptional to epigenetic control for the coordination of fungal developmental programs to specific secondary metabolite synthesis. Nuclear localization of the VeA bridging factor is carefully controlled in fungi. VeA carries three nuclear localization signals NLS1, NLS2 and NLS3, which all contribute to nuclear import. An additional VeA nuclear export sequence (NES) provides a shuttle function, which allows the cell to relocate VeA to the cytoplasm. VeA is nuclear during vegetative growth, but has to be exported from the nucleus to allow and promote asexual development. In contrast, progression of the sexual pathway requires continuous nuclear VeA localization. Accurate nuclear import and export control of velvet proteins is further connected to specific stability control mechanism as prerequisites for fungal development and secondary metabolism. These results illustrate the various complex mutual dependencies of velvet regulatory proteins for coordinating fungal development and secondary metabolism.

molecular biology↗