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Biological and Chemical Adaptation to Endogenous Hydrogen Peroxide Production in Streptococcus pneumoniae D39
John P Lisher1, Ho-Ching Tiffany Tsui2, Smirla Ramos-Montañez2
1Department of Chemistry, Indiana University, Bloomington, Indiana, USA; Graduate Program in Biochemistry, Indiana University, Bloomington, Indiana, USA.
Abstract:
The catalase-negative, facultative anaerobe Streptococcus pneumoniae D39 is naturally resistant to hydrogen peroxide (H2O2) produced endogenously by pyruvate oxidase (SpxB). Here, we investigate the adaptive response to endogenously produced H2O2. We show that lactate oxidase, which converts lactate to pyruvate, positively impacts pyruvate flux through SpxB and that ΔlctO mutants produce significantly lower H2O2. In addition, both the SpxB pathway and a candidate pyruvate dehydrogenase complex (PDHC) pathway contribute to acetyl coenzyme A (acetyl-CoA) production during aerobic growth, and the pyruvate format lyase (PFL) pathway is the major acetyl-CoA pathway during anaerobic growth. Microarray analysis of the D39 strain cultured under aerobic versus strict anaerobic conditions shows upregulation of spxB, a gene encoding a rhodanese-like protein (locus tag spd0091), tpxD, sodA, piuB, piuD, and an Fe-S protein biogenesis operon under H2O2-producing conditions. Proteome profiling of H2O2-induced sulfenylation reveals that sulfenylation levels correlate with cellular H2O2 production, with endogenous sulfenylation of ≈50 proteins. Deletion of tpxD increases cellular sulfenylation 5-fold and has an inhibitory effect on ATP generation. Two major targets of protein sulfenylation are glyceraldehyde-3-phosphate dehydrogenase (GapA) and SpxB itself, but targets also include pyruvate kinase, LctO, AdhE, and acetate kinase (AckA). Sulfenylation of GapA is inhibitory, while the effect on SpxB activity is negligible. Strikingly, four enzymes of capsular polysaccharide biosynthesis are sulfenylated, as are enzymes associated with nucleotide biosynthesis via ribulose-5-phosphate. We propose that LctO/SpxB-generated H2O2 functions as a signaling molecule to downregulate capsule production and drive altered flux through sugar utilization pathways. IMPORTANCE Adaptation to endogenous oxidative stress is an integral aspect of Streptococcus pneumoniae colonization and virulence. In this work, we identify key transcriptomic and proteomic features of the pneumococcal endogenous oxidative stress response. The thiol peroxidase TpxD plays a critical role in adaptation to endogenous H2O2 and serves to limit protein sulfenylation of glycolytic, capsule, and nucleotide biosynthesis enzymes in S. pneumoniae.
Insights
Streptococcus pneumoniae adapts to endogenous hydrogen peroxide (H2O2) by regulating capsule production and sugar utilization pathways. The thiol peroxidase TpxD is crucial for managing oxidative stress and limiting protein damage.
Area of Science:
- Microbiology
- Biochemistry
- Molecular Biology
Background:
- Streptococcus pneumoniae, a facultative anaerobe, exhibits natural resistance to hydrogen peroxide (H2O2).
- Endogenous H2O2 production, primarily via pyruvate oxidase (SpxB), is a key factor in pneumococcal adaptation and virulence.
Purpose of the Study:
- To investigate the adaptive response of Streptococcus pneumoniae to endogenously produced H2O2.
- To identify key transcriptomic and proteomic changes associated with endogenous oxidative stress.
Main Methods:
- Microarray analysis to compare gene expression under aerobic and anaerobic conditions.
- Proteome profiling to identify H2O2-induced protein sulfenylation.
- Genetic manipulation, including gene deletions (e.g., ΔlctO, ΔtpxD).
Main Results:
- Lactate oxidase (LctO) positively impacts H2O2 production through SpxB; ΔlctO mutants produce less H2O2.
- Transcriptomic analysis revealed upregulation of spxB, tpxD, sodA, and other genes under H2O2-producing conditions.
- Proteomic analysis identified approximately 50 proteins susceptible to sulfenylation, with TpxD deletion increasing sulfenylation and inhibiting ATP generation.
- Key sulfenylated proteins include glyceraldehyde-3-phosphate dehydrogenase (GapA), SpxB, and enzymes involved in capsule and nucleotide biosynthesis.
- Sulfenylation of GapA is inhibitory, while effects on SpxB are negligible.
Conclusions:
- Endogenously produced H2O2 acts as a signaling molecule in Streptococcus pneumoniae, downregulating capsule production and altering sugar utilization.
- The thiol peroxidase TpxD plays a critical role in adapting to endogenous H2O2 by limiting protein sulfenylation.
- Understanding these adaptive mechanisms is vital for comprehending pneumococcal colonization and virulence.
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