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Updated: Dec 14, 2025

Metal-Limited Growth of Neisseria gonorrhoeae for Characterization of Metal-Responsive Genes and Metal Acquisition from Host Ligands
Published on: March 4, 2020
Streptococcus pneumoniae metal homeostasis alters cellular metabolism
Lindsey R Burcham1, Rebecca A Hill2, Rachel C Caulkins1
1Department of Biological Sciences, Mississippi State University, Mississippi State MS 39762, USA. thornton@biology.msstate.edu.
Abstract:
Streptococcus pneumoniae colonizes the human nasopharyngeal mucosa and is a leading cause of community-acquired pneumonia, acute otitis media, and bacterial meningitis. Metal ion homeostasis is vital to the survival of this pathogen across diverse biological sites and contributes significantly to colonization and invasive disease. Microarray and qRT-PCR analysis revealed an upregulation of an uncharacterized operon (SP1433-1438) in pneumococci subjected to metal-chelation by N,N,N',N'-tetrakis-(2-pyridylmethyl)ethylenediamine (TPEN). Supplementation of zinc, cobalt, and nickel following TPEN treatment significantly abrogated induction. BLASTP comparisons and protein topology analysis predicted this locus to encode components of ATP binding cassette (ABC) transporters involved in multidrug resistance (SP1434-1435) and energy-coupling factor (ECF) transporters (SP1436-1438). Inductively coupled plasma mass spectrometry (ICP-MS) analysis identified differences in intracellular metal content in a Δ1434-8 mutant strain compared to parental T4R. Further, analysis of the secreted metabolome of WT and Δ1434-8 strains identified significant changes in pneumococcal glycolytic and amino acid metabolic pathways, indicating a shift towards mixed acid fermentation. Additionally, proteomic analysis revealed differentially expressed proteins in the Δ1434-8 mutant strain, with nearly 20% regulated by the global catabolite repressor, CcpA. Based on these findings, we propose that the transporters encoded by SP1433-1438 are involved in regulating the central metabolism of S. pneumoniae and contributing to bacterial survival during metal stress.
Insights
This study identifies a new set of transporters in Streptococcus pneumoniae that help it survive metal stress. These transporters regulate the bacteria's metabolism, impacting its ability to colonize and cause disease.
Area of Science:
- Microbiology
- Molecular Biology
- Biochemistry
Background:
- Streptococcus pneumoniae is a major human pathogen causing pneumonia and meningitis.
- Metal ion homeostasis is crucial for S. pneumoniae survival and virulence.
- An uncharacterized operon (SP1433-1438) was found to be upregulated under metal-chelating conditions.
Purpose of the Study:
- To investigate the function of the uncharacterized operon SP1433-1438 in Streptococcus pneumoniae.
- To determine the role of these transporters in metal ion homeostasis and bacterial metabolism.
Main Methods:
- Microarray and qRT-PCR for gene expression analysis.
- Supplementation assays with zinc, cobalt, and nickel.
- BLASTP and protein topology analysis for transporter identification.
- Inductively coupled plasma mass spectrometry (ICP-MS) for metal content analysis.
- Metabolomic and proteomic analyses of wild-type and mutant strains.
Main Results:
- The SP1433-1438 operon encodes predicted ABC and ECF transporters.
- A mutant lacking these transporters showed altered intracellular metal content.
- Metabolomic analysis revealed shifts in glycolytic and amino acid pathways towards mixed acid fermentation.
- Proteomic analysis indicated regulation by the global catabolite repressor CcpA.
Conclusions:
- The SP1433-1438 transporters are involved in regulating S. pneumoniae central metabolism.
- These transporters contribute to bacterial survival under metal stress conditions.
- Understanding these transporters may offer new targets for combating pneumococcal infections.
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