Authors
Olivia Tjahjono, Jingkai Wang, Evan Turner, Jürgen Prell, Wei E Huang, Philip S Poole, Carmen Sánchez-Cañizares
Published in
Applied and environmental microbiology. Pages e0107326. Sep 30, 2026. Epub Sep 30, 2026.
Abstract
The coordination of intracellular carbon and nitrogen levels is essential for optimal bacterial growth and, in rhizobia, for survival in the soil, root colonization, and symbiotic interactions with their host plants. Here, we show that the phosphotransferase system PTSNtr, a global regulator of carbon and nitrogen metabolism, modulates the tricarboxylic acid (TCA) cycle activity and the accumulation of three major carbon storage polymers: glycogen, polyhydroxybutyrate, and exopolysaccharide in Rhizobium leguminosarum. The unphosphorylated form of the effector protein ManX is sufficient for the full activation of the TCA cycle dehydrogenase enzymes. Accordingly, loss of manX reduced dehydrogenase activity and redirected overflow carbon into storage polymers, phenocopying wild-type cells grown under nitrogen starvation. We further demonstrate that carbon metabolism in R. leguminosarum is also tightly regulated by the HPr kinase (HprK) protein. In an hprK mutant, loss of NPr Ser48 phosphorylation favors phosphotransfer through the histidyl arm and is predicted to increase phosphorylation of downstream PTSNtr components. When grown on glucose, the hprK mutant accumulates elevated intracellular pyrimidine levels and exhibits increased malate dehydrogenase and TCA cycle activity, consistent with a misregulated shift toward gluconeogenesis. This mutant also overproduces exopolysaccharide, an effect potentially mediated by crosstalk between phosphorylated PtsN and the ChvI/ChvG two-component regulatory system. Together, these data suggest that HprK exerts pleiotropic control over processes regulated by PTSNtr, influencing central metabolism while repressing exopolysaccharide production, likely by promoting the unphosphorylated state of PtsN.IMPORTANCEBacteria must continuously balance growth, nutrient availability, and storage to ensure fitness and survival in fluctuating environments. However, how regulatory networks integrate central metabolism with carbon storage remains poorly understood. This study reinforces the role of the PTSNtr system as a central coordinator of carbon routing and polymer accumulation. By revealing how ManX and HprK-dependent phosphorylation influence central metabolism and the production of major carbon storage polymers in Rhizobium leguminosarum, we show that disruption of PTSNtr signaling reprograms carbon allocation, uncoupling growth from carbon storage and mimicking nitrogen starvation even under nitrogen-replete conditions. These findings highlight a regulatory link between carbon-nitrogen signaling and bacterial storage strategies, with implications for cellular survival and plant symbiosis. More broadly, our work illustrates how global metabolic regulators shape bacterial physiological states, providing new insights into mechanisms that support microbial adaptation in complex environments.
PMID:
42813798
Bibliographic data and abstract were imported from PubMed on 30 Sep 2026.
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