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Plant genetic and root-associated microbial diversity modulate Lactuca sativa responsiveness to a soil inoculum under phosphate deficiency.

Microbial-based approaches offer a promising strategy to decrease the use of chemical fertilizers in agriculture. Among them, arbuscular mycorrhizal fungi (AMF), which extend root surface area and enhance phosphate uptake, and phosphate-solubilizing bacteria (PSB) are particularly relevant. However, their effectiveness depends strongly on plant genetic diversity. To identify genetic markers underlying plant responses to beneficial soil microbes, we studied a panel of 128 fully sequenced Lactuca sativa varieties under controlled phosphate-starvation conditions and treated with AMF and PSB. Lettuce genetic variation showed a strong effect on physiological and morphological responses to microbial inoculation. Genome-wide association studies identified specific genomic regions associated with changes in leaf phosphate content and shoot biomass following treatment. Beyond genetic factors, we observed shifts in fungal β-diversity and increased bacterial α-diversity associated with phenotypic variation. We also identified 44 amplicon sequence variants associated with agriculturally relevant traits. Among these, six bacterial strains were experimentally validated through in vitro and pot experiments for their effects on leaf phosphate concentration and shoot biomass. Overall, we highlighted key genetic, microbial, and physiological mechanisms that may enhance microbial treatments for improved plant phosphate management in lettuce.

16S and ITS metabarcoding↗

RNA polymerase binding sites isolated from T4DNA: analysis of oligopyrimidine sequences constituting preinitiation and initiation complexes.

Oligopyrimidines which contain 5'-hydroxymethylcytosine instead of cytosine were separated by thin layer chromatography. Using this method, the oligopyrimidine pattern of RNA polymerase binding sites, isolated from T4DNA, was evaluated quantitatively. The analysis shows that 1. the RNA polymerase binding sites on T4 DNA obtained under low salt conditions in absence of triphosphates, are A-T-rich as compared with total T4 DNA. 2. The A-T base pairs stand mainly in alternating position. On the average these sequences comprise more than half of the chain length of each binding site, which contains about 8 G-5'-HMC pairs. 3. The sites of binding and the sites of initiation do not show an identical base composition. 4. A mixture of at least 8 different binding istes is isolated under the conditions employed. This figure is in agreement with the number of distinct transcripts synthesized in nitro by E. coli RNA polymerase from T4 DNA. The overall length of these transcripts corresponds to approximately 9% of the T4 genome.

Binding Sites↗