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Bueno Batista, M.

Publications and source records attributed to Bueno Batista, M..

2 recordsLinked to original sources

Disrupting hierarchical control of nitrogen fixation enables carbon-dependent regulation of ammonia excretion in soil diazotrophs

The energetic requirements for biological nitrogen fixation necessitate stringent regulation of this process in response to diverse environmental constraints. To ensure that the nitrogen fixation machinery is expressed only under appropriate physiological conditions, the dedicated NifL-NifA regulatory system, prevalent in Proteobacteria, plays a crucial role in integrating signals of the oxygen, carbon and nitrogen status to control transcription of nitrogen fixation (nif) genes. Greater understanding of the intricate molecular mechanisms driving transcriptional control of nif genes may provide a blueprint for engineering diazotrophs that associate with cereals. In this study, we investigated the properties of a single amino acid substitution in NifA, (NifA-E356K) which disrupts the hierarchy of nif regulation in response to carbon and nitrogen status in Azotobacter vinelandii. The NifA-E356K substitution enabled overexpression of nitrogenase in the presence of excess fixed nitrogen and release of ammonia outside the cell. However, both of these properties were conditional upon the nature of the carbon source. Our studies reveal that the uncoupling of nitrogen fixation from its assimilation is likely to result from feedback regulation of glutamine synthetase, allowing surplus fixed nitrogen to be excreted. Reciprocal substitutions in NifA from other Proteobacteria yielded similar properties to the A. vinelandii counterpart, suggesting that this variant protein may facilitate engineering of carbon source-dependent ammonia excretion amongst diverse members of this family. SignificanceThe NifL-NifA regulatory system provides dedicated signal transduction machinery to regulate nitrogen fixation in diverse Proteobacteria. Understanding how the balance of nitrogen and carbon resources is signalled via NifL-NifA for precise control of nitrogen fixation may lead to broadly applicable translational outputs. Here, we characterize a NifA variant that bypasses nitrogen regulation but is still dependent on the carbon status to enable ammonia excretion in soil diazotrophs. Disruption of the regulatory hierarchy in response to nitrogen and carbon suggests how the integration of environmental stimuli could be harnessed to engineer conditional release of fixed nitrogen for the benefit of cereal crops.

microbiology↗

Desulfovibrio diazotrophica sp. nov., a sulphate reducing bacterium from the human gut capable of nitrogen fixation

Sulphate-reducing bacteria (SRB) are widespread in human guts, yet their expansion has been linked to colonic diseases. We report the isolation, genome sequencing, and physiological characterisation of a novel SRB species belonging to the class Deltaproteobacteria (QI0027T). Phylogenomic analysis revealed that the QI0027T strain belongs to the genus Desulfovibrio with its closest relative being Desulfovibrio legallii. Metagenomic sequencing of stool samples from 45 individuals, as well as comparison with 1690 Desulfovibrionaceae metagenome-assembled genomes, revealed the presence of QI0027T in at least 22 further individuals. QI0027T encoded nitrogen fixation genes and based on the acetylene reduction assay, actively fixed nitrogen. Transcriptomics revealed that QI0027T overexpressed 45 genes in nitrogen limiting conditions as compared to cultures supplemented with ammonia, including nitrogenases, an urea uptake system and the urease enzyme complex. To the best of our knowledge, this is the first Desulfovibrio human isolate for which nitrogen fixation has been demonstrated. This isolate was named Desulfovibrio diazotrophica sp. nov., referring to its ability to fix nitrogen ( diazotroph). ImportanceAnimals are often nitrogen limited and have evolved diverse strategies to capture biologically active nitrogen. These strategies range from amino acid transporters to stable associations with beneficial microbes that can provide fixed nitrogen. Although frequently thought as a nutrient-rich environment, nitrogen fixation can occur in the human gut of some populations, but so far it has been attributed mainly to Clostridia and Klebsiella based on sequencing. We have cultivated a novel Desulfovibrio from human gut origin which encoded, expressed and actively used nitrogen fixation genes, suggesting that some sulphate reducing bacteria could also play a role in the availability of nitrogen in the gut.

microbiology↗