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White, P. B.

Publications and source records attributed to White, P. B..

2 recordsLinked to original sources

A new stress-response pathway in Mycobacterium tuberculosis

Metabolic adaptations are key in the virulence of the pathogen Mycobacterium tuberculosis (Mtb). However, our current understanding of these adaptations is limited to common pathways in central carbon metabolism. Here we apply an untargeted bottom-up approach to discover unknown stress-responsive metabolites and their biosynthetic enzyme. We show that upon exposure to hypoxia, nitric oxide and activated macrophages, Mtb rapidly produces high levels of an unknown metabolite that we identify as 6-{gamma}-amino-butyric acid-trehalose (GABA-trehalose). Formation of millimolar GABA-trehalose levels under these stresses is driven by a rapid rise in GABA, which is also excreted. We demonstrate that GABA-trehalose is produced from GABA and trehalose by the uncharacterized ATP-grasp enzyme Rv1722, involving a carboxylate-hydroxyl ligation that is non-canonical for ATP-grasp enzymes. Phylogenetic analyses demonstrate that the gene rv1722 is present in most slow-growing mycobacteria but absent in most rapid-growing mycobacteria. While the role of GABA-trehalose in Mtb metabolism remains unclear, we postulate that the increased NADH/NAD+ ratio under hypoxia and nitric oxide exposure promotes GABA formation and inhibits its breakdown, leading to GABA accumulation and excretion. Rv1722-driven coupling of GABA and trehalose constitutes an alternative to excretion that conserves carbon and nitrogen. Taken together, our bottom-up approach reveals a new stress-response pathway in Mtb that rapidly produces large quantities of GABA-trehalose. These findings extend our knowledge of the metabolic adaptations that a major human pathogen utilizes in response to immune system-imposed stresses.

biochemistry↗

Selective ion binding and uptake shape the microenvironment of biomolecular condensates

Biomolecular condensates modulate various ion-dependent cellular processes and can regulate subcellular ion distributions by selective uptake of ions. However, the molecular grammar governing condensate-ion interactions is poorly understood. Here, we use NMR spectroscopy of ions and model condensate components to quantify and spatially resolve selective ion binding to condensates and show that these interactions follow the law of matching water affinities, resulting in strong binding between proteins and chaotropic anions, and between nucleic acids and kosmotropic cations. Ion uptake into condensates directly follows binding affinities, resulting in selective uptake of strong-binding ions, but exclusion of weak-binding ions. Ion binding further shapes the condensate microenvironment by altering the composition, viscosity and interface potential. Such changes can have profound effects on biochemical processes taking place inside condensates, as we show for RNA duplex formation. Our findings provide a new perspective on the role of condensate-ion interactions in cellular bio- and electrochemistry and may aid design of condensate-targeting therapeutics.

biophysics↗