bioRxiv Science⌕ Search

bioRxiv · 10.64898/2026.01.29.702562

Spatio-temporal coordination of virulence, metabolism, and stress responses shapes infection dynamics of Xanthomonas perforans

Abstract

Plants provide distinct ecological niches for diverse microbial communities, with each member adopting strategies tailored to the specific ecological niche it inhabits. Two foliar niches, the leaf surface (epiphytic environment) and the apoplast, impose distinct physiological constraints on microbial fitness, particularly for hemibiotrophic pathogens. In this study, we investigated how these environments shape the transcriptional responses of Xanthomonas perforans (Xp), a tomato pathogen, and how its virulence factors, metabolic pathways, and regulatory networks are spatially and temporally coordinated during disease progression. Transcriptome profiling of a pathogen recovered from the leaf surface and apoplast revealed pronounced niche-specific and colonization stage-specific gene expression patterns. Early epiphytic colonization was characterized by activation of chemosensing, and motility pathways that facilitate pathogen relocation and acquisition of limiting nutrients such as iron and phosphate. This stage also featured induction of DNA and protein repair systems, quorum sensing pathways, phenylalanine degradation and tyrosine conversion to counter phenylpropanoid defenses, genes involved in mitigating osmotic and oxidative stress, active DNA exchange machinery, and type VI secretion system-mediated microbial competition. Upon entry into the apoplast, Xp shifted toward active metabolism and replication, accompanied by investment in type II and III secreted virulence factor expression. Genes involved in evasion of plant immunity and overcoming of host-mediated nutrient sequestration were also upregulated, including those involved in quinone detoxification, phosphate and sulfur uptake, and fatty acid, xanthan, and LPS biosynthesis. During late apoplastic colonization, the pathogen transitioned again towards strong stress response activation, followed by renewed expression of flagellar motility and chemotaxis genes, suggesting preparation for dissemination. Notably, genes associated with oxidative and nutrient stress were enriched across both niches, although specific components differed. Type IV pili, conjugation genes, and plasmid-borne type III effectors were induced early in both niches, suggesting their niche-independent role in initial establishment. Together, these findings reveal a coordinated spatio-temporal regulatory strategy during the transition from the leaf surface to the apoplast. Author SummaryXanthomonas perforans is a foliar bacterial pathogen that infects tomato plants and leads to severe yield losses. To establish a successful infection, the pathogen must overcome a series of environmental and host-imposed challenges. This study characterizes the traits activated at distinct stages of infection, during both early and late pathogenesis, and across different niches, including the leaf surface and its interior (apoplastic) space. On the leaf surface Xanthomonas mainly focuses on movement, communication, and survival against stress and starvation with the major functions related to motility, nutrient uptake, and DNA transfer during early stages. Once inside the leaf, the bacteria switches tactics to focus primarily on reproduction, defense against the plant immune response, production of factors that weaken the plants defenses and gaining access to nutrients the plant normally restricts. Understanding the different stages of infection may inform how the crosstalk among host and pathogen unfolds during pathogenesis allowing us to understand the host environment. These findings can help us discover pathogen weaknesses that could be targeted for disease management.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Kaur, A., Ramamoorthy, S., Ghosh, P., Weis, K., Potnis, N.. 2026-01-29. Spatio-temporal coordination of virulence, metabolism, and stress responses shapes infection dynamics of Xanthomonas perforans. https://doi.org/10.64898/2026.01.29.702562

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related preprints

A population-scale landscape of the subgingival microbiome reveals divergent routes to periodontal dysbiosis

Periodontitis is an archetypical mucosal inflammatory disease in which microbiome dysbiosis at the tooth-epithelial interface interacts with host genetic and behavioral risk factors to drive immune-mediated tissue destruction. Although subgingival microbiome compositional shifts are thought to parallel disease severity, microbiome variation at the population-level and its relationship to periodontal clinical phenotypes and disease-modifying factors remain poorly defined. Here, we use unsupervised manifold learning to map the compositional landscape of the subgingival microbiome in 1,355 adults spanning periodontal health to severe periodontitis. We identified eight latent microbiome states organized along a branching continuum from eubiosis to dysbiosis. An intermediate microbial configuration marked ecological destabilization and bifurcation into two distinct periodontitis-associated dysbiotic trajectories, distinguished by links to gingival inflammation and smoking. Although the microbiome trajectories broadly tracked periodontal destruction, a minority of individuals showed discordant microbiome-clinical phenotypes, with some individuals with periodontitis retaining otherwise eubiotic microbiomes enriched for low-abundance pathobionts, while some cases of health or mild disease had highly dysbiotic communities, suggesting distinct host susceptibility. Together, these findings define a population-scale ecological landscape of the subgingival microbiome, reveal divergent trajectories to periodontal dysbiosis, and highlight heterogeneity in the relationship between microbial community structure and clinical disease expression.

microbiology↗

Rapid and largely reversible shifts in the canine fecal metabolome during dietary change

Diet can rapidly change the fecal metabolome, but less is known about recovery after the original diet is restored. We used untargeted UPLC-MS metabolomics to analyze 72 fecal samples from nine Pumi dogs during an owner-managed switch from dry food to raw food and back to dry food. Diet phase accounted for a large proportion of variation in both ionization modes. More than 13,000 LC-MS features changed at the first sampling point after the switch to raw food, with a similarly large response after return to dry food. Among features significant in both comparisons, more than 99% changed in opposite directions. At the final sampling point, no positive-mode (ESI+) features and only 13 negative-mode (ESI-) features differed from the second dry-food baseline under the same threshold. BARF-associated patterns persisted in analyses excluding individual dogs and in pedigree-adjusted candidate models, although individual feature effects depended on normalization. Putative metabolites from several biochemical classes differed in their response and recovery. The fecal metabolome therefore changed rapidly and returned largely toward baseline, with differences among dogs.

microbiology↗

Taxonomic and functional concordance between full-length ONT 16S and ONT shotgun metagenomics in the canine gut microbiome

Background: Full-length Oxford Nanopore Technologies (ONT) 16S rRNA sequencing provides a scalable view of microbial community composition and can support phylogeny-based functional prediction, but it is not equivalent to shotgun metagenomics. We asked which biological conclusions are preserved when the same canine fecal specimens are profiled by full-length ONT 16S and ONT whole-genome shotgun (WGS) sequencing, and how their agreement depends on analytical scale, reference representation and classifier. Methods: Ninety-seven fecal specimens from 51 dogs were profiled with both assays from the same DNA extract. Functional profiles predicted from NanoASV/NanoPredict with PICRUSt2 were compared with WGS-supported KEGG Ortholog (KO) profiles generated by Kadath. Taxonomy was benchmarked in a source-genome-matched RefSeq universe and in a host-specific DogMAG universe using minitax and Kraken2. Agreement was evaluated at whole-profile, feature-abundance, detection, between-sample structure and biological-inference scales. Age-associated transfer was assessed with dog-aware continuous mixed models, grouped signed-score analyses and paired/dog-blocked PERMANOVA. Results: Functional whole-profile concordance was high: median within-sample CLR Spearman correlations ranged from 0.781 to 0.860 across developmental strata, while between-sample functional structure remained significant by Mantel (rho=0.543) and Procrustes (r=0.693; both p=0.001). Feature-wise transfer was substantially weaker (median KO-wise CLR Spearman=0.318). Continuous age-associated KO slopes showed substantial cross-assay concordance (Spearman=0.727; signed-score Spearman=0.753; direction agreement=77.9%), although 1,290/5,258 eligible KOs retained significant assay-by-age interactions. Taxonomically, exact genus/species abundance agreement was much lower than agreement in between-sample ecological structure. Host-specific DogMAG improved species-level median Spearman from 0.261 to 0.656 for minitax SpeciesEstimate and from 0.181 to 0.512 for Kraken2. The classifier effect was independent of reference choice: under both RefSeq and DogMAG, minitax yielded stronger 16S-WGS concordance than Kraken2, with all eight prespecified RefSeq paired genus/species endpoints and all 10 DogMAG primary paired endpoints significant after BH correction. The same ordering extended to developmental inference, with DogMAG genus/species age-slope concordance of 0.795/0.799 for SpeciesEstimate versus 0.693/0.702 for Kraken2. Taxonomic Aitchison PERMANOVA detected age-associated structure in every assay/reference/classifier/rank combination, whereas age-by-assay interactions were consistently significant but small (R2 approximately 1.1 to 2.2%). Stricter NanoASV identity thresholds removed substantial 16S abundance without improving species-level agreement. Conclusions: The extent of cross-assay agreement depends on the level of analysis. Full-length ONT 16S preserves broad functional organization, ecological structure and much of the direction of age-associated change, but exact fine-rank composition, individual-feature abundance and effect magnitude remain assay dependent. Host-specific reference representation substantially narrows the taxonomic gap, and classifier choice exerts an additional independent effect: within the same matched reference set, minitax consistently yields stronger 16S-WGS concordance than Kraken2 across abundance, detection, ecological-distance and developmental-inference endpoints. Full-length ONT 16S is therefore well suited to broad ecological screening and hypothesis generation, whereas WGS remains preferable when conclusions depend on quantitative fine-rank composition, directly supported gene content or precise feature-level effect estimates.

microbiology↗