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Updated: Jul 5, 2025

Staphylococcus aureus Growth using Human Hemoglobin as an Iron Source
Published on: February 7, 2013
Histidine transport is essential for the growth of Staphylococcus aureus at low pH
Catrin M Beetham1, Christopher F Schuster1, Igor Kviatkovski1
1Section of Molecular Microbiology and Centre for Bacterial Resistance Biology, Imperial College London, London, United Kingdom.
Abstract:
Staphylococcus aureus is an opportunistic pathogen capable of causing many different human diseases. During colonization and infection, S. aureus will encounter a range of hostile environments, including acidic conditions such as those found on the skin and within macrophages. However, little is known about the mechanisms that S. aureus uses to detect and respond to low pH. Here, we employed a transposon sequencing approach to determine on a genome-wide level the genes required or detrimental for growth at low pH. We identified 31 genes that were essential for the growth of S. aureus at pH 4.5 and confirmed the importance of many of them through follow up experiments using mutant strains inactivated for individual genes. Most of the genes identified code for proteins with functions in cell wall assembly and maintenance. These data suggest that the cell wall has a more important role than previously appreciated in promoting bacterial survival when under acid stress. We also identified several novel processes previously not linked to the acid stress response in S. aureus. These include aerobic respiration and histidine transport, the latter by showing that one of the most important genes, SAUSA300_0846, codes for a previously uncharacterized histidine transporter. We further show that under acid stress, the expression of the histidine transporter gene is increased in WT S. aureus. In a S. aureus SAUSA300_0846 mutant strain expression of the histidine biosynthesis genes is induced under acid stress conditions allowing the bacteria to maintain cytosolic histidine levels. This strain is, however, unable to maintain its cytosolic pH to the same extent as a WT strain, revealing an important function specifically for histidine transport in the acid stress response of S. aureus.
Insights
Staphylococcus aureus uses its cell wall and histidine transport to survive acidic conditions encountered during infection. This study identifies key genes involved in the acid stress response, revealing new survival mechanisms for this opportunistic pathogen.
Area of Science:
- Microbiology
- Bacterial Pathogenesis
- Molecular Biology
Background:
- Staphylococcus aureus is an opportunistic pathogen causing various human diseases.
- Acidic environments, like skin and macrophages, pose challenges for S. aureus survival.
- Mechanisms of S. aureus acid stress detection and response are poorly understood.
Purpose of the Study:
- To identify genes essential for S. aureus growth at low pH using a genome-wide approach.
- To elucidate the role of the cell wall and novel pathways in acid stress response.
- To characterize the function of a novel histidine transporter in acid tolerance.
Main Methods:
- Transposon sequencing (Tn-seq) for genome-wide identification of essential genes at pH 4.5.
- Construction and analysis of individual gene knockout mutant strains.
- Gene expression analysis and assessment of cytosolic pH maintenance.
Main Results:
- 31 genes essential for S. aureus growth at pH 4.5 were identified.
- Cell wall assembly and maintenance proteins were predominantly implicated in acid tolerance.
- A novel histidine transporter (SAUSA300_0846) was found crucial for acid stress survival, with its gene expression increasing under acid conditions.
Conclusions:
- The bacterial cell wall plays a critical role in S. aureus acid stress survival.
- Histidine transport is a novel and important mechanism for maintaining cytosolic pH homeostasis under acid stress.
- Understanding these mechanisms can inform strategies against S. aureus infections.
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