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Matthew F Traxler

Publications and source records attributed to Matthew F Traxler.

3 recordsLinked to original sources

Enrichment of root-associated Streptomyces strains in response to drought is driven by diverse functional traits and does not predict beneficial effects on plant growth.

The genus Streptomyces has consistently been found enriched in drought-stressed plant root microbiomes, yet the ecological basis and functional variation underlying this enrichment at the strain and isolate level remain unclear. Using two 16S rRNA sequencing methods with different levels of taxonomic resolution, we confirmed drought-associated enrichment (DE) of Streptomyces in field-grown sorghum roots and identified five closely related but distinct amplicon sequence variants (ASVs) belonging to the genus with variable drought enrichment patterns. From a culture collection of sorghum root endophytes, we selected 12 Streptomyces isolates representing these ASVs for phenotypic and genomic characterization. Whole-genome sequencing revealed substantial variation in gene content, even among closely related isolates, and exometabolomic profiling showed distinct metabolic responses to media supplemented with drought- versus well-watered root tissue. Traits linked to drought survival, including osmotic stress tolerance, siderophore production, and carbon utilization, varied widely among isolates and were not phylogenetically conserved. Using a broader panel of 48 Streptomyces, we demonstrate that DE scores, determined through mono-association experiments in gnotobiotic sorghum systems, showed high variability and lacked correlation with plant growth promotion. Pangenome-wide association identified orthogroups involved in osmolyte transport (e.g., proP) and membrane biosynthesis (e.g., fabG) as positively associated with DE, though most associations lacked phylogenetic signal. Collectively, these results demonstrate that Streptomyces DE is not a conserved genus-level trait but is instead strain-specific and functionally heterogeneous. Furthermore, DE in the root microbiome was shown not to predict beneficial effects on plant growth. This work underscores the need to resolve functional traits at the strain level and highlights the complexity of microbe-host-environment interactions under abiotic stress.

Streptomyces

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 ΔcvnD8 overproduced undecylprodigiosin. Together, these results connect a widespread AGPS to control of specialized metabolism in a model actinomycete.

Journal Article

Sharing and community curation of mass spectrometry data with Global Natural Products Social Molecular Networking.

The potential of the diverse chemistries present in natural products (NP) for biotechnology and medicine remains untapped because NP databases are not searchable with raw data and the NP community has no way to share data other than in published papers. Although mass spectrometry (MS) techniques are well-suited to high-throughput characterization of NP, there is a pressing need for an infrastructure to enable sharing and curation of data. We present Global Natural Products Social Molecular Networking (GNPS; http://gnps.ucsd.edu), an open-access knowledge base for community-wide organization and sharing of raw, processed or identified tandem mass (MS/MS) spectrometry data. In GNPS, crowdsourced curation of freely available community-wide reference MS libraries will underpin improved annotations. Data-driven social-networking should facilitate identification of spectra and foster collaborations. We also introduce the concept of 'living data' through continuous reanalysis of deposited data.

Biological Products