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Updated: Jan 23, 2026

A Murine Model of Group B Streptococcus Vaginal Colonization
Published on: November 16, 2016
Transcriptomic Analysis of Streptococcus pyogenes Colonizing the Vaginal Mucosa Identifies hupY, an MtsR-Regulated
Laura C C Cook1, Nilanjana Chatterjee2, Yan Li3
1Binghamton Biofilm Research Center, Department of Biology, Binghamton University, Binghamton, New York, USA lcook@binghamton.edu.
Abstract:
Streptococcus pyogenes (group A streptococcus [GAS]) is a serious human pathogen with the ability to colonize mucosal surfaces such as the nasopharynx and vaginal tract, often leading to infections such as pharyngitis and vulvovaginitis. We present genome-wide transcriptome sequencing (RNASeq) data showing the transcriptomic changes GAS undergoes during vaginal colonization. These data reveal that the regulon controlled by MtsR, a master metal regulator, is activated during vaginal colonization. This regulon includes two genes highly expressed during vaginal colonization, hupYZ Here we show that HupY binds heme in vitro, affects intracellular concentrations of iron, and is essential for proper growth of GAS using hemoglobin or serum as the sole iron source. HupY is also important for murine vaginal colonization of both GAS and the related vaginal colonizer and pathogen Streptococcus agalactiae (group B streptococcus [GBS]). These data provide essential information on the link between metal regulation and mucosal colonization in both GAS and GBS.IMPORTANCE Colonization of the host requires the ability to adapt to an environment that is often low in essential nutrients such as iron. Here we present data showing that the transcriptome of the important human pathogen Streptococcus pyogenes shows extensive remodeling during in vivo growth, resulting in, among many other differentially expressed genes and pathways, a significant increase in genes involved in acquiring iron from host heme. Data show that HupY, previously characterized as an adhesin in both S. pyogenes and the related pathogen Streptococcus agalactiae, binds heme and affects intracellular iron concentrations. HupY, a protein with no known heme binding domains, represents a novel heme binding protein playing an important role in bacterial iron homeostasis as well as vaginal colonization.
Insights
Group A Streptococcus (GAS) utilizes HupY to bind heme and acquire iron during vaginal colonization. This novel heme-binding protein is crucial for GAS and Group B Streptococcus (GBS) vaginal colonization and iron homeostasis.
Area of Science:
- Microbiology
- Bacterial Pathogenesis
- Molecular Biology
Background:
- *Streptococcus pyogenes* (group A streptococcus, GAS) is a significant human pathogen causing mucosal infections.
- GAS colonizes mucosal sites like the nasopharynx and vagina, leading to pharyngitis and vulvovaginitis.
- Host colonization requires adaptation to nutrient-limited environments, particularly iron scarcity.
Purpose of the Study:
- To investigate transcriptomic changes in GAS during vaginal colonization.
- To identify key genes and regulatory pathways involved in GAS vaginal colonization.
- To elucidate the role of the HupY protein in iron acquisition and colonization.
Main Methods:
- Genome-wide transcriptome sequencing (RNA-Seq) of GAS during vaginal colonization.
- In vitro characterization of HupY protein for heme binding and iron uptake.
- Murine models to assess the role of HupY in vaginal colonization of GAS and *Streptococcus agalactiae* (GBS).
Main Results:
- Transcriptomic analysis revealed activation of the MtsR metal-responsive regulon during vaginal colonization.
- The *hupYZ* genes were highly expressed during vaginal colonization.
- HupY protein demonstrated in vitro heme binding, influenced intracellular iron levels, and was essential for growth on hemoglobin or serum.
- HupY was critical for vaginal colonization in murine models for both GAS and GBS.
Conclusions:
- HupY is a novel heme-binding protein essential for iron acquisition and vaginal colonization by *Streptococcus pyogenes*.
- HupY plays a significant role in the iron homeostasis and mucosal colonization of both GAS and GBS.
- Understanding HupY's function provides insights into bacterial adaptation to host environments and potential therapeutic targets.
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