The regulon of Brucella abortus two-component system BvrR/BvrS reveals the coordination of metabolic pathways required for intracellular life.
Olga Rivas-SolanoMathilde Van der HenstAmanda Castillo-ZeledónMarcela Suárez-EsquivelLohendy Muñoz-VargasZeuz Capitan-BarriosNicholas R ThomsonEsteban Chaves-OlarteEdgardo MorenoXavier De BolleCaterina Guzmán-VerriPublished in: PloS one (2022)
Brucella abortus is a facultative intracellular pathogen causing a severe zoonotic disease worldwide. The two-component regulatory system (TCS) BvrR/BvrS of B. abortus is conserved in members of the Alphaproteobacteria class. It is related to the expression of genes required for host interaction and intracellular survival. Here we report that bvrR and bvrS are part of an operon composed of 16 genes encoding functions related to nitrogen metabolism, DNA repair and recombination, cell cycle arrest, and stress response. Synteny of this genomic region within close Alphaproteobacteria members suggests a conserved role in coordinating the expression of carbon and nitrogen metabolic pathways. In addition, we performed a ChIP-Seq analysis after exposure of bacteria to conditions that mimic the intracellular environment. Genes encoding enzymes at metabolic crossroads of the pentose phosphate shunt, gluconeogenesis, cell envelope homeostasis, nucleotide synthesis, cell division, and virulence are BvrR/BvrS direct targets. A 14 bp DNA BvrR binding motif was found and investigated in selected gene targets such as virB1, bvrR, pckA, omp25, and tamA. Understanding gene expression regulation is essential to elucidate how Brucella orchestrates a physiological response leading to a furtive pathogenic strategy.
Keyphrases
- dna repair
- genome wide
- genome wide identification
- gene expression
- single cell
- transcription factor
- dna methylation
- dna damage
- poor prognosis
- reactive oxygen species
- cell cycle arrest
- copy number
- bioinformatics analysis
- cell therapy
- staphylococcus aureus
- genome wide analysis
- binding protein
- pseudomonas aeruginosa
- pi k akt
- high throughput
- single molecule
- stem cells
- early onset
- circulating tumor
- long non coding rna
- cell free
- dna binding
- atomic force microscopy
- pulmonary hypertension
- coronary artery
- pulmonary arterial hypertension
- nucleic acid