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A Fluorescence-based Method to Study Bacterial Gene Regulation in Infected Tissues
Published on: February 19, 2019
Lipoteichoic acid biosynthesis by Staphylococcus aureus is controlled by the MspA protein
Dora Bonini1, Seána Duggan1,2, Alaa Alnahari1,3
1School of Cellular and Molecular Medicine, University of Bristol, Bristol, United Kingdom.
Abstract:
Staphylococcus aureus produces a plethora of virulence factors critical to its ability to establish an infection and cause disease. We have previously characterized a small membrane protein, MspA, which has pleiotropic effects on virulence and contributes to S. aureus pathogenicity in vivo. Here we report that mspA inactivation triggers overaccumulation of the essential cell wall component, lipoteichoic acid (LTA), which, in turn, decreases autolytic activity and leads to increased cell size due to a delay in cell separation. We show that MspA directly interacts with the enzymes involved in LTA biosynthesis (LtaA, LtaS, UgtP, and SpsB), interfering with their normal activities. MspA, in particular, interacts with the type I signal peptidase SpsB, limiting its cleavage of LtaS into its active form. These findings suggest that MspA contributes to maintaining a physiological level of LTA in the cell wall by interacting with and inhibiting the activity of SpsB, thereby uncovering a critical role for the MspA protein in regulating cell envelope biosynthesis and pathogenicity.IMPORTANCEThe S. aureus cell envelope, comprising the cytoplasmic membrane, a thick peptidoglycan layer, and the anionic polymers lipoteichoic acid and wall teichoic acids, is fundamental for bacterial growth and division, as well as being the main interface between the pathogen and the host. It has become increasingly apparent that the synthesis and turnover of cell envelope components also affect the virulence of S. aureus. In this study, we show that MspA, an effector of S. aureus virulence, contributes to the maintenance of normal levels of lipoteichoic acid in the cell wall, with implications on cell cycle and size. These findings further our understanding of the connections between envelope synthesis and pathogenicity and suggest that MspA represents a promising target for the development of future therapeutic strategies.
Insights
Staphylococcus aureus MspA protein regulates lipoteichoic acid (LTA) levels. MspA inactivation causes LTA overaccumulation, affecting cell size and virulence, suggesting MspA as a therapeutic target.
Area of Science:
- Microbiology
- Cell Biology
- Biochemistry
Background:
- Staphylococcus aureus possesses numerous virulence factors essential for infection.
- MspA is a small membrane protein previously shown to influence S. aureus virulence and pathogenicity.
- The bacterial cell envelope is crucial for growth, division, and host interaction, and its synthesis impacts S. aureus virulence.
Purpose of the Study:
- To investigate the role of MspA in regulating cell envelope biosynthesis in S. aureus.
- To elucidate the mechanism by which MspA affects lipoteichoic acid (LTA) levels and bacterial morphology.
- To identify potential therapeutic targets for S. aureus infections.
Main Methods:
- Gene inactivation of mspA in S. aureus.
- Analysis of lipoteichoic acid (LTA) accumulation and cell morphology.
- Protein-protein interaction studies involving MspA and enzymes of LTA biosynthesis.
- Investigation of MspA's effect on SpsB activity and LtaS cleavage.
Main Results:
- mspA inactivation led to LTA overaccumulation, decreased autolytic activity, and increased cell size due to delayed cell separation.
- MspA was found to directly interact with LTA biosynthesis enzymes (LtaA, LtaS, UgtP, SpsB).
- MspA specifically inhibits the activity of type I signal peptidase SpsB, reducing LtaS cleavage and activation.
Conclusions:
- MspA plays a critical role in maintaining physiological LTA levels by regulating SpsB activity.
- This regulation impacts cell envelope biosynthesis, bacterial morphology, and pathogenicity of S. aureus.
- MspA represents a potential therapeutic target for combating S. aureus infections.
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