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Updated: Mar 22, 2026

Synthesis of Masarimycin, a Small Molecule Inhibitor of Gram-Positive Bacterial Growth
Published on: January 7, 2022
Structural insights into inhibition of lipid I production in bacterial cell wall synthesis
Ben C Chung1, Ellene H Mashalidis1, Tetsuya Tanino2
1Department of Biochemistry, Duke University Medical Center, 303 Research Drive, Durham, North Carolina, 27710, USA.
Abstract:
Antibiotic-resistant bacterial infection is a serious threat to public health. Peptidoglycan biosynthesis is a well-established target for antibiotic development. MraY (phospho-MurNAc-pentapeptide translocase) catalyses the first and an essential membrane step of peptidoglycan biosynthesis. It is considered a very promising target for the development of new antibiotics, as many naturally occurring nucleoside inhibitors with antibacterial activity target this enzyme. However, antibiotics targeting MraY have not been developed for clinical use, mainly owing to a lack of structural insight into inhibition of this enzyme. Here we present the crystal structure of MraY from Aquifex aeolicus (MraYAA) in complex with its naturally occurring inhibitor, muraymycin D2 (MD2). We show that after binding MD2, MraYAA undergoes remarkably large conformational rearrangements near the active site, which lead to the formation of a nucleoside-binding pocket and a peptide-binding site. MD2 binds the nucleoside-binding pocket like a two-pronged plug inserting into a socket. Further interactions it makes in the adjacent peptide-binding site anchor MD2 to and enhance its affinity for MraYAA. Surprisingly, MD2 does not interact with three acidic residues or the Mg(2+) cofactor required for catalysis, suggesting that MD2 binds to MraYAA in a manner that overlaps with, but is distinct from, its natural substrate, UDP-MurNAc-pentapeptide. We have determined the principles of MD2 binding to MraYAA, including how it avoids the need for pyrophosphate and sugar moieties, which are essential features for substrate binding. The conformational plasticity of MraY could be the reason that it is the target of many structurally distinct inhibitors. These findings can inform the design of new inhibitors targeting MraY as well as its paralogues, WecA and TarO.
Insights
Structural insights into MraY inhibition by muraymycin D2 reveal large conformational changes. Understanding these mechanisms can guide the development of new antibiotics targeting bacterial peptidoglycan biosynthesis.
Area of Science:
- Microbiology
- Structural Biology
- Drug Discovery
Background:
- Antibiotic-resistant bacterial infections pose a significant global health threat.
- Peptidoglycan biosynthesis is a validated target for novel antibiotic development.
- MraY (phospho-MurNAc-pentapeptide translocase) is a crucial enzyme in peptidoglycan synthesis and a promising antibiotic target.
Purpose of the Study:
- To elucidate the structural basis of MraY inhibition by its natural nucleoside inhibitor, muraymycin D2.
- To understand the conformational changes in MraY upon inhibitor binding.
- To provide insights for the design of new MraY-targeting antibiotics.
Main Methods:
- X-ray crystallography was used to determine the structure of Aquifex aeolicus MraY (MraYAA) in complex with muraymycin D2 (MD2).
- Analysis of the crystal structure to identify binding interactions and conformational changes.
Main Results:
- The crystal structure reveals large conformational rearrangements in MraYAA upon MD2 binding, creating distinct nucleoside-binding and peptide-binding sites.
- MD2 binds via a unique mechanism, anchoring to MraYAA without interacting with key catalytic residues or the Mg(2+) cofactor.
- MD2 binding differs from the natural substrate, UDP-MurNAc-pentapeptide, by not requiring pyrophosphate and sugar moieties for interaction.
Conclusions:
- The conformational plasticity of MraY facilitates binding of diverse inhibitors.
- The determined binding principles of MD2 to MraYAA offer a foundation for designing novel antibiotics against MraY and related enzymes like WecA and TarO.
- This structural information is critical for advancing the development of urgently needed antibacterial agents.
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