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Biology subjects

Manganelli, R.

Publications and source records attributed to Manganelli, R..

2 recordsLinked to original sources

The phage shock protein A (PspA) maintains membrane potential and supports NADH dehydrogenase function in mycobacteria

Maintenance of membrane integrity and proton motive force (PMF) is critical for bacterial survival. The phage shock protein (Psp) system, conserved across bacterial species, stabilizes the membrane, maintains PMF, and protects against envelope damage. However, how the conserved effector PspA contributes to PMF maintenance remains unclear. Here, using the mycobacterial Psp system as a genetically tractable model, we provide mechanistic insight into this process. We show that PspA and the accessory protein PspM jointly sustain membrane potential, with PspM required to maintain a ~70 kDa PspA isoform at the membrane during envelope stress. Loss of PspA increases susceptibility to thioridazine, which targets type II NADH dehydrogenase (NDH-2), and to Ro 48-8071, an inhibitor of menaquinone biosynthesis. Notably, hypersusceptibility to thioridazine is rescued by exogenous menaquinone. Consistent with these phenotypes, a pspA-deficient mutant exhibits impaired NADH dehydrogenase activity despite unchanged abundance of NDH-2 and menaquinone (MK-9). Together, these findings identify a functional link between PspA and NADH dehydrogenase-dependent respiration and suggest that PspA contributes to PMF maintenance by supporting respiratory electron transfer.

molecular biology↗

Mycobacterium tuberculosis partitions the Krebs cycle to persist under iron starvation

In this study, we investigated how iron limitation alters central metabolism in Mycobacterium tuberculosis using metabolomics and stable isotope tracing. Our findings reveal a well-orchestrated metabolic program to enable Krebs cycle activity despite the inefficient action of its iron-dependent enzymes. Under such conditions, carbon flux through the oxidative branch of the Krebs cycle is stalled, resulting in the accumulation of metabolites that are partially secreted. As a result, carbon flux from glycolysis is partially diverted to the reductive branch of the Krebs cycle to support the production of oxaloacetate and malate through the activity of phosphoenolpyruvate carboxykinase and pyruvate carboxylase. Both branches terminate with the synthesis of malate, which is secreted. This unprecedented split of the Krebs cycle and malate secretion in a bacterial pathogen facilitates the continuous flow of carbon through the core of carbon metabolism, overcoming the metabolic stalling triggered by iron starvation.

microbiology↗