4.8 Article

Molecular architecture of the PBP2-MreC core bacterial cell wall synthesis complex

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NATURE COMMUNICATIONS
卷 8, 期 -, 页码 -

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NATURE PUBLISHING GROUP
DOI: 10.1038/s41467-017-00783-2

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资金

  1. Laboratoire International Associe BACWALL (CNRS)
  2. FAPESP (Fundacao de Amparo a Pesquisa do Estado de Sao Paulo) [11/52067-6]
  3. FRM (Fondation pour la Recherche Medicale) [DEQ20090515390]
  4. ERC Starting Grant [PGNfrom SHAPEtoVIR-202283]
  5. FRM Grant Programme d'Urgence [DBF20160635726]
  6. French Government's Investissement d'Avenir program, Laboratoire d'Excellence Integrative Biology of Emerging Infectious Diseases [ANR-10-LABX-62-IBEID]
  7. FRISBI within the Grenoble Partnership for Structural Biology (PSB) [ANR-10-INSB-05-02]
  8. GRAL within the Grenoble Partnership for Structural Biology (PSB) [ANR-10-LABX-49-01]
  9. [ANR-13-BSV8-0015-01]

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Bacterial cell wall biosynthesis is an essential process that requires the coordinated activity of peptidoglycan biosynthesis enzymes within multi-protein complexes involved in cell division (the divisome) and lateral wall growth (the elongasome). MreC is a structural protein that serves as a platform during wall elongation, scaffolding other essential peptidoglycan biosynthesis macromolecules, such as penicillin-binding proteins. Despite the importance of these multi-partite complexes, details of their architecture have remained elusive due to the transitory nature of their interactions. Here, we present the crystal structures of the soluble PBP2: MreC core elongasome complex from Helicobacter pylori, and of uncomplexed PBP2. PBP2 recognizes the two-winged MreC molecule upon opening of its N-terminal region, revealing a hydrophobic zipper that serves as binding platform. The PBP2: MreC interface is essential both for protein recognition in vitro and maintenance of bacterial shape and growth. This work allows visualization as to how peptidoglycan machinery proteins are scaffolded, revealing interaction regions that could be targeted by tailored inhibitors.

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