Completed Cells, Biochemistry & Physiology Plants, Animals & Ecology

Small but mighty: Investigate how c-di-AMP contributes to osmotic regulation, amino acid metabolism, respiration and beta-lactam resistance in Staphylococcus aureus

In plain English

AI plain-English summary

Staphylococcus aureus needs a molecule called c-di-AMP to grow normally, but scientists don't yet understand exactly how it works. This project will uncover the molecular mechanisms by which c-di-AMP controls how the bacterium manages salt levels, uses amino acids, and responds to low-oxygen conditions—such as those it encounters inside a human body during infection. This matters because S. aureus is a major cause of hospital-acquired infections, and it is becoming resistant to beta-lactam antibiotics, a cornerstone of treatment. The abstract shows that c-di-AMP is linked to the bacterium's ability to cope with these cell-wall-targeting drugs. Understanding this link could reveal new vulnerabilities in the pathogen. If successful, this fundamental science will explain how a single signalling molecule coordinates multiple survival strategies in a dangerous bacterium. There is no immediate practical application, but similar work on bacterial signalling has previously identified targets for entirely new classes of antibiotics. A clearer picture of how S. aureus adapts to its host could, in the longer term, inform strategies to disrupt that adaptation and make existing antibiotics work better.

View original technical description
The signalling nucleotide c-di-AMP is intimately linked to osmotic regulation and essential for the growth of Staphylococcus aureus under standard conditions. However, the molecular mechanisms behind this are currently not understood. Osmolarity in bacteria is regulated through the intracellular levels of potassium, osmolytes and amino acids. c-di-AMP directly or indirectly regulates the uptake and synthesis of all three compounds and the mechanisms behind this will be investigated in this work. Furthermore, we have recently discovered that c-di-AMP is dispensable when S. aureus is grown under anaerobic conditions, suggesting that fundamental cellular processes that are controlled by c-di-AMP are regulated differently during anaerobic growth. Here, we will address how c-di-AMP contributes to the osmotic regulation in bacteria, how this affects their ability to cope with cell wall-targeting antibiotics and how fundamental processes such as osmolyte uptake and amino acid utilization are altered under low oxygen conditions, which S. aureus encounters during infection. As nucleotide signalling molecules have critical functions that allow bacteria to adapt rapidly to changing conditions, these studies will provide important insight into the survival of this pathogen in the environment as well as on changes occurring when it transitions to growth in a human host.

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Researchers

Angelika Grundling (EPMC Awardee)

Related Research

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Original classification

Investigator Award in Science

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