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Structure and function of the first full-length murein peptide ligase (Mpl) cell wall recycling protein
Debanu Das1, Mireille Hervé, Julie Feuerhelm
1Stanford Synchrotron Radiation Lightsource, SLAC National Accelerator Laboratory, Menlo Park, California, United States of America.
Abstract:
Bacterial cell walls contain peptidoglycan, an essential polymer made by enzymes in the Mur pathway. These proteins are specific to bacteria, which make them targets for drug discovery. MurC, MurD, MurE and MurF catalyze the synthesis of the peptidoglycan precursor UDP-N-acetylmuramoyl-L-alanyl-γ-D-glutamyl-meso-diaminopimelyl-D-alanyl-D-alanine by the sequential addition of amino acids onto UDP-N-acetylmuramic acid (UDP-MurNAc). MurC-F enzymes have been extensively studied by biochemistry and X-ray crystallography. In gram-negative bacteria, ∼30-60% of the bacterial cell wall is recycled during each generation. Part of this recycling process involves the murein peptide ligase (Mpl), which attaches the breakdown product, the tripeptide L-alanyl-γ-D-glutamyl-meso-diaminopimelate, to UDP-MurNAc. We present the crystal structure at 1.65 Å resolution of a full-length Mpl from the permafrost bacterium Psychrobacter arcticus 273-4 (PaMpl). Although the Mpl structure has similarities to Mur enzymes, it has unique sequence and structure features that are likely related to its role in cell wall recycling, a function that differentiates it from the MurC-F enzymes. We have analyzed the sequence-structure relationships that are unique to Mpl proteins and compared them to MurC-F ligases. We have also characterized the biochemical properties of this enzyme (optimal temperature, pH and magnesium binding profiles and kinetic parameters). Although the structure does not contain any bound substrates, we have identified ∼30 residues that are likely to be important for recognition of the tripeptide and UDP-MurNAc substrates, as well as features that are unique to Psychrobacter Mpl proteins. These results provide the basis for future mutational studies for more extensive function characterization of the Mpl sequence-structure relationships.
Insights
Researchers determined the crystal structure of murein peptide ligase (Mpl) from Psychrobacter arcticus, revealing unique features for bacterial cell wall recycling distinct from Mur enzymes, aiding drug discovery.
Area of Science:
- Structural Biology
- Bacterial Cell Wall Synthesis
- Drug Discovery
Background:
- Bacterial cell walls are essential and contain peptidoglycan, synthesized by Mur pathway enzymes.
- MurC-D-E-F enzymes build peptidoglycan precursors, making them targets for antibacterial drug development.
- Cell wall recycling in Gram-negative bacteria involves murein peptide ligase (Mpl).
Purpose of the Study:
- To determine the crystal structure of full-length Mpl from Psychrobacter arcticus 273-4 (PaMpl).
- To analyze sequence-structure relationships unique to Mpl and compare them with MurC-F ligases.
- To characterize the biochemical properties of PaMpl.
Main Methods:
- X-ray crystallography to obtain the 1.65 Å resolution structure of PaMpl.
- Sequence and structural analysis comparing Mpl to MurC-F enzymes.
- Biochemical characterization including optimal temperature, pH, magnesium binding, and kinetics.
Main Results:
- The crystal structure of PaMpl was determined, showing similarities to Mur enzymes but with unique features.
- Sequence-structure analysis highlighted differences between Mpl and MurC-F ligases, related to Mpl's recycling function.
- Biochemical properties were characterized, and potential substrate-binding residues were identified.
Conclusions:
- The unique structural and sequence features of PaMpl differentiate it from MurC-F enzymes, likely due to its role in cell wall recycling.
- The findings provide a structural basis for understanding Mpl function and for future drug discovery efforts targeting bacterial cell wall synthesis.
- Further mutational studies are warranted to fully elucidate the function and sequence-structure relationships of Mpl.
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