bioRxiv Science⌕ Search

Biology subjects

Esme, O.

Publications and source records attributed to Esme, O..

4 recordsLinked to original sources

Isolation of rhizobia from Ontario soils that are effective at fixing nitrogen with common bean (Phaseolus vulgaris)

Common bean (Phaseolus vulgaris) is an important crop in Canada and globally. Like other legumes, common bean (Phaseolus vulgaris) establishes symbiotic interactions with nitrogen fixing bacteria called rhizobia. However, nitrogen fixation by rhizobia in association with common bean is often suboptimal, constraining its productivity and necessitating the application of nitrogen fertilizer. To support the development of high-performing, locally adapted rhizobial inoculants for Ontario common bean growers, we isolated 216 common bean-nodulating rhizobia from southern Ontario soils using a nodule trapping approach with four common bean cultivars. Whole genome sequencing followed by phylogenomic analyses of the 216 rhizobial isolates revealed substantial diversity, assigning them to 11 Rhizobium species, including two novel species. Nearly all isolates belong to the symbiovar phaseoli, spanning the nodC {gamma}-a, {gamma}-b, and alleles, with four isolates belonging to the symbiovar gallica. Soil origin had a significant impact on the species-level community composition recovered during the nodule trapping experiments, indicative of biogeographical structuring of common bean-nodulating rhizobia across southern Ontario. In contrast, host trapping cultivar had only a minor influence of the recovered Rhizobium population diversity. Greenhouse assays demonstrated that one of the novel Rhizobium species exhibited the highest average symbiotic effectiveness, although high-quality isolates were found across multiple species. Together, these results revealed a diverse and genomically variable Rhizobium community capable of forming effective symbioses with common bean in southern Ontario soils. Importantly, our genome-sequenced Rhizobium collection will serve as a valuable resource for identifying competitive and high-quality strains for the development of inoculants tailored to Ontario common bean production. IMPORTANCECommon bean is a globally important food crop, yet its productivity is often limited by suboptimal nitrogen fixation, forcing growers to rely on synthetic fertilizers. Consequently, identifying high-performing, locally adapted inoculant strains is essential for reducing dependence on synthetic nitrogen fertilizers and improving the sustainability of temperate agroecosystems. Our study provides a genome-sequenced collection of common bean-nodulating Rhizobium from southern Ontario, revealing substantial species and genomic diversity across sampling locations. Greenhouse studies allowed us to identify multiple isolates, including isolates from a novel Rhizobium species, that consistently fix nitrogen with, and enhance the growth of, common bean plants. Our findings highlight strong biogeographical structuring of rhizobial communities and demonstrate that Ontario soils already harbour strains with high symbiotic potential. In addition, our Rhizobium collection represents a foundational resource to support future inoculant development and enables future work on the ecology, evolution, and applied optimization of legume-rhizobium symbioses.

microbiology↗

Updated taxonomy of the family Rhizobiaceae with proposals for 10 novel genera and 35 novel combinations

The family Rhizobiaceae of the class Alphaproteobacteria is highly diverse and currently consists of at least 276 validly published or proposed species across 38 genera. Despite several recent studies proposing revisions to the family Rhizobiaceae, anomalies and inconsistencies in the taxonomy of this family remain. Here, we revisit the taxonomy of the family Rhizobiaceae with a focus on the genus Rhizobium. First, we generated whole genome sequences for 12 Rhizobium type strains that previously lacked publicly available genome sequences. We then applied an established phylogenomic framework to reappraise the taxonomic classification of 242 Rhizobiaceae type strains. Our data suggest that Rhizobium aegyptiacum is a later heterotypic synonym of Rhizobium aethiopicum, and they contradict a recent suggestion that Rhizobium azibense and Rhizobium gallicum are synonymous. In addition, we propose the formation of ten new genera (Allohoeflea gen. nov., Arminia gen. nov., Fluviimicrobium gen. nov., Gillisella gen. nov., Limnomicrobium gen. nov., Martinezia gen. nov., Neohoeflea gen. nov., Parahoeflea gen. nov., Velazquezia gen. nov., and Yannia gen. nov.) and 35 novel combinations to fix paraphyletic genera or account for monophyletic type strains that are clearly distinguishable based on core-proteome average amino acid identity (cpAAI) comparisons. Lastly, our data suggest that the type strain of Rhizobium arsenicireducens may have been lost, and that either a neotype should be designated or the taxonomic status of this species should be revised.

microbiology↗

Re-evaluation of the nodulation capacity of Sphingomonas sediminicola DSM 18106T indicates that this strain is not capable of inducing root nodule formation on Pisum sativum (pea)

Rhizobia are soil-dwelling proteobacteria that can enter into symbiotic nitrogen-fixing relationships with compatible leguminous plants. Taxonomically, rhizobia are divided into alpha-rhizobia, which belong to the class Alpharoteobacteria, and beta-rhizobia, which belong to the class Betaproteobacteria. To date, all bona fide alpha-rhizobia belong to the order Hyphomicrobiales. However, a recent study suggested that Sphingomonas sediminicola DSM 18106T is also a rhizobium and is capable of nodulating pea plants (Pisum sativum), which would expand the known taxonomic distribution of alpha-rhizobia to include the order Sphingomonadales. Here, we attempted to replicate the results of that previous study. Resequencing and computational analysis of the genome of S. sediminicola DSM 18106T failed to identify genes encoding proteins involved in legume nodulation or nitrogen fixation. In addition, experimental plant assays indicated that S. sediminicola DSM 18106T is unable to nodulate the two cultivars of pea tested in our study, unlike the rhizobium Rhizobium johnstonii 3841T. Taken together, and in contrast to the previous study, these results suggest that S. sediminicola DSM 18106T is not capable of inducing root nodule formation on pea, meaning that the taxonomic distribution of all known alpha-rhizobia remains limited to the class Hyphomicrobiales.

microbiology↗

Characterization of Arabidopsis aldolases AtFBA4 and AtFBA5; inhibition by morin and interaction with calmodulin

Fructose bisphosphate aldolases (FBAs) catalyze the reversible cleavage of fructose 1,6-bisphosphate into dihydroxyacetone phosphate and glyceraldehyde 3-phosphate. We analyzed two previously uncharacterized cytosolic Arabidopsis FBAs, AtFBA4 and AtFBA5. Based on a recent report, we examined the interaction of AtFBA4 with calmodulin (CaM)-like protein 11 (AtCML11). AtFBA4 did not bind AtCML11, however, we found that CaM bound AtFBA5 in a Ca2+-dependent manner with high specificity and affinity (KD [~] 190 nM) and enhanced its stability. AtFBA4 and AtFBA5 exhibited Michaelis-Menten kinetics with Km and Vmax values of 180 {micro}M and 4.9 U/mg for AtFBA4, and 6.0 {micro}M and 0.30 U/mg for AtFBA5, respectively. The flavonoid morin inhibited both isozymes. Our study suggests that Ca2+ signalling and flavanols may influence plant glycolysis/gluconeogenesis.

biochemistry↗