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Bengten, E.

Publications and source records attributed to Bengten, E..

2 recordsLinked to original sources

Lactate Oxidase (LctO) Acts as a Metabolic Checkpoint Restraining Streptococcus pneumoniae Invasion of Respiratory Epithelial Barriers

Streptococcus pneumoniae rapidly translocates across polarized human bronchial epithelial barriers, with viable bacteria recovered from the basolateral compartment within 1 h post-infection. Disruption of the pyruvate node through combined deletion of pyruvate oxidase (spxB) and lactate oxidase (lctO) markedly enhanced transmigration of S. pneumoniae across polarized Calu-3 monolayers without causing early cytotoxicity or loss of monolayer integrity. This hyper-invasive phenotype was conserved in the TIGR4 and EF3030 background and under air-liquid interface conditions. Importantly, single {Delta}lctO mutants exhibited significantly greater translocation than {Delta}spxB mutants or wild-type strains across bronchial (Calu-3), alveolar (A549), and pharyngeal (Detroit 562) epithelial models. Enhanced translocation correlated with increased bacterial adherence but was independent of capsule expression, extracellular H2O2 production, pneumolysin, or tight junction disruption, as evidenced by stable transepithelial electrical resistance (TEER), lack of caspase-3/7 activation, and minimal IL-18 release at early time points. High-resolution confocal microscopy revealed intracellular {Delta}lctO pneumococci localized within N-acetylglucosamine/sialic acid (GN/SA)-containing compartments as early as 1 h post-infection. In murine macrophages, {Delta}lctO mutants were phagocytosed at rates similar to wild-type bacteria but induced greater pneumolysin-dependent cytotoxicity at 24 h. These findings demonstrate that LctO functions as a metabolic checkpoint that restrains pneumococcal invasion of respiratory epithelia, revealing a previously unrecognized role for lactate oxidase in controlling the transition from colonization to invasive disease. ImportanceThis study identifies lactate oxidase (LctO) as a critical metabolic checkpoint that restrains Streptococcus pneumoniae invasion of respiratory epithelial barriers. By linking pyruvate node metabolism to the control of transmigration, these findings reveal a novel mechanism by which central carbon metabolism regulates pneumococcal virulence and the transition from colonization to invasive disease.

microbiology↗

Pneumococcal H2O2 Reshapes Mitochondrial Function and Reprograms Host Cell Metabolism

Streptococcus pneumoniae (Spn), a primary cause of pneumonia, induces acute lung parenchymal damage through a unique metabolic pathway generating hydrogen peroxide (H2O2) as a byproduct. This study demonstrates that Spn-derived H2O2, primarily produced by pyruvate oxidase (SpxB), inhibits key tricarboxylic acid (TCA) cycle enzymes (aconitase, glutamate dehydrogenase, and -ketoglutarate dehydrogenase) in lung epithelial cells, leading to citrate accumulation and diminished NADH production for oxidative phosphorylation. RNA sequencing reveals SpxB-dependent upregulation of glycolytic genes (HIF1A, IER3, HK2, PFKP), restricting pyruvate entry into the TCA cycle and increasing glucose consumption and lactate/acetate production, indicative of a Warburg-like metabolic shift that may enhance bacterial survival. Notably, mitochondrial membrane potential remains largely preserved, with minimal apoptosis despite Spn-induced stress. These findings uncover a novel mechanism of Spn-driven host metabolic reprogramming, highlighting potential therapeutic targets for pneumococcal diseases. ImportanceStreptococcus pneumoniae remains a leading cause of community-acquired pneumonia worldwide, yet the mechanisms by which it manipulates host metabolism to promote its survival and pathogenesis are not fully understood. This study reveals a novel metabolic strategy whereby pneumococcus-derived hydrogen peroxide, generated by pyruvate oxidase (SpxB), disrupts the host TCA cycle and drives a Warburg-like metabolic shift in lung epithelial cells. By inhibiting key TCA cycle enzymes and rewiring glycolytic gene expression, S. pneumoniae effectively reprograms host cell metabolism to favor its persistence, while minimizing host cell apoptosis and maintaining mitochondrial function. These insights expand our understanding of host-pathogen metabolic interactions and identify potential metabolic vulnerabilities that could be targeted to mitigate tissue damage and improve treatment outcomes in pneumococcal pneumonia.

microbiology↗