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Biology subjects

de Miranda, R.

Publications and source records attributed to de Miranda, R..

2 recordsLinked to original sources

A glyoxal sensing Pseudomonas aeruginosa transcription factor enables lung infection

Aldehydes are a class of normally unwanted toxic electrophilic compounds that mainly arise from oxidation of glucose, lipids or DNA. However, it has recently come to light that they can also be weaponized by professional phagocytes to kill engulfed bacteria. How microbes subvert these assaults remains largely enigmatic. Here we describe the function, atomic structure and mechanism of the first bacterial transcription factor able to directly sense the dicarbonyl glyoxal (GO), which we aptly named the Glyoxal Regulator (GloR, from Pseudomonas aeruginosa PAO1), We show that GloR directly senses GO through a reversible cysteine modification that results in its binding to a conserved DNA regulatory motif (a glo box), which then triggers a transcriptional activation of a defined set of genes to help counter GO toxicity and enable acute lung infection. Despite substantial evolutionary divergence, when unmodified gloR and a glo box-regulated reporter were transferred into E. coli, a strikingly tight GO-specific regulation was maintained, suggesting this system could be readily transferred between unrelated microbial species. As homologs of GloR were identified in diverse bacterial species we anticipate its use to be widespread in both pathogens and environmental bacteria. Taken together, we present the first bona fide bacterial aldehyde regulator which senses host GO to enable survival during infection.

microbiology↗

A periplasmic protein complex mediates cell envelope integrity and intrinsic multidrug resistance in Mycobacterium tuberculosis

The intrinsic drug resistance of Mycobacterium tuberculosis (Mtb) is a major barrier to effective tuberculosis (TB) treatment, largely due to its complex, impermeable cell envelope. We identified a periplasmic protein complex comprising FecB and Rv3035 that is essential for maintaining envelope integrity and mediating intrinsic multidrug resistance in Mtb. FecB interacts with Rv3035, forming a stable heterodimer that associates with the cell envelope biosynthesis protein AftB. We report the structures of Rv3035 alone and in complex with FecB and identify critical residues for complex formation and function. Co-essentiality and genetic interaction analyses support a functional link between FecB, Rv3035 and AftB, an arabinofuranosyltransferase which synthesizes arabinogalactan and lipoarabinomannan. Loss of FecB or Rv3035 disrupted AftB-mediated arabinan synthesis, suggesting that these proteins support AftBs enzymatic activity. Importantly, FecB is required for Mtb virulence in mice, underscoring its physiological relevance. These findings highlight FecB, Rv3035 and AftB as promising therapeutic targets.

microbiology↗