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Updated: Jan 21, 2026

Development and Assessment of Intracellular Infection Models for Staphylococcus aureus
Published on: January 17, 2025
Role of MurT C-Terminal Domain in the Amidation of Staphylococcus aureus Peptidoglycan
Bárbara V Gonçalves1, Raquel Portela1, Ricardo Lobo1
1Laboratory of Molecular Microbiology of Bacterial Pathogens, UCIBIO@REQUIMTE, Departamento de Ciências da Vida, Faculdade de Ciências e Tecnologia, Universidade Nova de Lisboa, Caparica, Portugal.
Abstract:
Glutamate amidation, a secondary modification of the peptidoglycan, was first identified in Staphylococcus aureus It is catalyzed by the protein products of the murT and gatD genes, which are conserved and colocalized in the genomes of most sequenced Gram-positive bacterial species. The MurT-GatD complex is required for cell viability, full resistance to β-lactam antibiotics, and resistance to human lysozyme and is recognized as an attractive target for new antimicrobials. Great effort has been invested in the study of this step, culminating recently in three independent reports addressing the structural elucidation of the MurT-GatD complex. In this work, we demonstrate through the use of nonstructural approaches the critical and multiple roles of the C-terminal domain of MurT, annotated as DUF1727, in the MurT-GatD enzymatic complex. This domain provides the physical link between the two enzymatic activities and is essential for the amidation reaction. Copurification of recombinant MurT and GatD proteins and bacterial two-hybrid assays support the observation that the MurT-GatD interaction occurs through this domain. Most importantly, we provide in vivo evidence of the effect of substitutions at specific residues in DUF1727 on cell wall peptidoglycan amidation and on the phenotypes of oxacillin resistance and bacterial growth.
Insights
Glutamate amidation in bacteria is crucial for cell viability and antibiotic resistance. This study reveals the C-terminal DUF1727 domain of MurT is essential for the MurT-GatD complex
Area of Science:
- Microbiology
- Biochemistry
- Structural Biology
Background:
- Glutamate amidation is a key modification of bacterial peptidoglycan, essential for cell wall integrity.
- The MurT-GatD complex catalyzes glutamate amidation and is a potential antimicrobial target.
- Previous studies focused on structural elucidation of the MurT-GatD complex.
Purpose of the Study:
- To investigate the non-structural roles of the MurT C-terminal domain (DUF1727) in the MurT-GatD complex.
- To elucidate the function of DUF1727 in peptidoglycan amidation and associated phenotypes.
Main Methods:
- Nonstructural biochemical approaches.
- Copurification of recombinant MurT and GatD proteins.
- Bacterial two-hybrid assays.
- In vivo analysis of DUF1727 residue substitutions.
Main Results:
- The DUF1727 domain physically links MurT and GatD activities, crucial for amidation.
- MurT-GatD interaction is mediated through the DUF1727 domain.
- Specific DUF1727 residue substitutions impact peptidoglycan amidation, oxacillin resistance, and bacterial growth in vivo.
Conclusions:
- The MurT DUF1727 domain plays a critical, multifaceted role in the MurT-GatD enzymatic complex.
- DUF1727 is essential for bacterial cell viability, antibiotic resistance, and lysozyme resistance.
- Targeting the DUF1727 domain offers a promising strategy for developing novel antimicrobials.
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