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Vunnum, A.

Publications and source records attributed to Vunnum, A..

2 recordsLinked to original sources

A widespread Actinobacterial G Protein System regulates production of specialized metabolites in Streptomyces coelicolor

Actinobacterial G protein systems (AGPSs), also known as conservons, are regulatory systems that are broadly distributed within Actinomycetota. AGPSs are composed of a minimum of four proteins, including a sensor histidine kinase, a small Ras-like GTPase, a roadblock/MglB protein (likely a GTPase activating protein), and protein with a domain of unknown function that likely functions as a guanine-nucleotide exchange factor (GEF). While progress has been made in understanding AGPS function at the mechanistic level, the phylogenetic distribution of individual AGPSs, and the genes and processes they regulate, remain largely unmapped. Previously, the Cvn8 AGPS of Streptomyces coelicolor was found to influence expression of genes in multiple specialized metabolic pathways during interspecies interactions with other actinomycetes. However, the impact of the Cvn8 AGPS on specialized metabolism has not been assessed at the chemical level. Here, we investigated the phylogenetic distribution of the Cvn8 AGPS clade,and assessed the impact of the Cvn8 AGPS on natural product biosynthesis using untargeted metabolomics. In a set of 485 actinobacterial genomes, we found that members of the clade that includes the Cvn8 AGPS from S. coelicolor are widely distributed in the lineages known to produce specialized metabolites. We also found that in S. coelicolor, the pattern of specialized metabolite production varied in mutants lacking specific components of the Cvn8 AGPS. Specifically, normal production of the pigmented antibiotic actinorhodin during interspecies interactions required cvnA8 and cvnF8, while a{Delta} cvnD8 overproduced undecylprodigiosin. Together, these results connect a widespread AGPS to control of specialized metabolism in a model actinomycete. ImportanceActinobacterial G protein systems (AGPSs) are found widely in bacteria in the phylum Actinomycetota, including genera like Streptomyces that produce many useful molecules and pathogens such as Mycobacterium tuberculosis. The genes and functions regulated by these regulatory systems are largely unknown. Here we investigated the role of the Cvn8 AGPS in controlling the production of specialized metabolites, like antibiotics, in the model actinomycete Streptomyces coelicolor. We found that specific components of the Cvn8 AGPS were required for normal production of the antibiotic actinorhodin during interactions between S. coelicolor and another actinomycete. We also show that Cvn8 belongs to a group of AGPSs that is found broadly in the genus Streptomyces and in more distantly related orders of Actinomycetota such as the Pseudonorcardiales and Micromonosporales. Together, these results raise the possibility that this group of AGPSs may influence specialized metabolism across a broad range of Actinomycetota lineages.

microbiology↗

Conservation of function without conservation of amino acid sequence in intrinsically disordered transcriptional activation domains

Protein function is canonically believed to be more conserved than amino acid sequence, but this idea is only well supported in folded domains, where highly diverged sequences can fold into equivalent 3D structures with identical function. Intrinsically disordered protein regions (IDRs) often experience rapid amino acid sequence divergence, but because they do not fold into stable 3D structures, it remains unknown when and how function is conserved. As a model system for studying the evolution of IDRs, we examined transcriptional activation domains, the regions of transcription factors that bind to coactivator complexes. We systematically identified activation domains on 502 homologs of the transcriptional activator Gcn4 spanning 600 MY of fungal evolution in the Ascomycota. We find that the central activation domain shows strong conservation of function without conservation of sequence. We identify the molecular mechanism for this conservation of function without conservation of sequence: evolutionary turnover (gain and loss) of acidic and aromatic residues that are important for function. We further see turnover of complete N-terminal activation domains. This turnover at two length scales confounds multiple sequence alignments, explaining why traditional comparative genomics cannot detect functional conservation of activation domains. Evolutionary turnover of key residues is likely a general mechanism for conservation of function without conservation of sequence in IDRs.

systems biology↗