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Giram, P.

Publications and source records attributed to Giram, P..

2 recordsLinked to original sources

Multidomain triple target capture for navigating complex symbioses

Amplicon sequencing remains the benchmark technique for characterizing microbial communities, but the limitations of PCR bias and single-locus targets conspire to limit conclusions. Metagenomics, the primary alternative, shares with amplicon sequencing challenges of economic scaling at adequate sequencing depth. Targeted enrichment strategies can improve the data resolution and economics of sequencing efforts while reducing methodological bias. Here, we develop a target capture strategy for metagenomic characterization of eukaryotic ribosomal DNA and root nodule symbiosis genes and test it in the metagenomes of plant root nodules. We utilize biotinylated RNA probes to selectively capture genomic regions of interest from complex environmental DNA samples, avoiding forms of PCR bias that can undermine community characterization and overcoming the need for conserved priming sites often lacking in functional genes. We designed custom probe sets targeting conserved flanking regions of eukaryotic ITS and known root nodule symbiosis (RNS)-related genes and tested them on diverse root nodule metagenomes and a mock community. We observed high recovery of target loci from samples, very high on-target read proportions, and enhanced detection of low-abundance taxa compared to amplicon sequencing, including stronger alignment with known mock community compositions. This approach will enable deeper insights into the phylogenetic diversity of eukaryotic symbionts, their genomic adaptations, and the functional potential of symbiotic interactions in a cost-effective manner suitable for large-scale projects. This strategy advances our understanding of microbial community dynamics and symbiotic relationships in natural and anthropogenic ecosystems.

ecology↗

"Fuzzy specificity" shapes diazotroph diversity and composition in nodulating plants of the Southeastern USA

Nitrogen-fixing symbioses, particularly those occurring in root nodules, are among the most consequential mutualisms in natural and agricultural systems and represent a globally important source of bioavailable nitrogen. Despite their importance, patterns of diversity and composition among diazotrophic symbionts--and the processes structuring those patterns in natural systems--remain poorly resolved, with competing hypotheses emphasizing ecological, or phylogenetic constraints on host-symbiont associations. Here, using a broad survey of nodulating plants from the southeastern United States, we examine how diazotrophic symbiont communities vary across host plant phylogeny, habitat context, and geographic origin. We find that host phylogeny is the primary determinant of symbiont composition, outweighing effects of fine-scale taxonomic identity. Symbiont associations are therefore structured mainly at deeper phylogenetic levels, consistent with phylogenetically constrained, or "fuzzy," host specificity. Likewise, nodule community diversity--potentially reflecting variation in host control over infection--differs primarily among higher-level clades rather than among closely related taxa. Habitat context also shapes nodule communities, but its influence is secondary and most evident in undisturbed environments. As well, nonnative legumes harbor distinct symbiont assemblages despite occupying similar habitats, whereas distantly related legume clades share symbionts across habitats, highlighting interactions among phylogeny, ecology, and geographic history. Overall, our results show that host phylogeny exerts the strongest influence on nodule microbial communities, likely reflecting evolutionary divergence in symbiotic function across major host lineages.

ecology↗