Defective lytic transglycosylase disrupts cell morphogenesis by hindering cell wall de-O-acetylation in Neisseria meningitidis

Author:

Williams Allison Hillary1ORCID,Wheeler Richard12,Deghmane Ala-Eddine3,Santecchia Ignacio14,Schaub Ryan E5,Hicham Samia1,Moya Nilges Maryse6,Malosse Christian7,Chamot-Rooke Julia7,Haouz Ahmed8,Dillard Joseph P5,Robins William P9,Taha Muhamed-Kheir3,Gomperts Boneca Ivo1

Affiliation:

1. Unité Biologie et Génétique de la Paroi Bactérienne, Institut Pasteur; Groupe Avenir, INSERM 75015, Paris, France

2. Tumour Immunology and Immunotherapy, Institut Gustave Roussy, Villejuif, France

3. Unité des Infection Bactériennes Invasives, Institut Pasteur, Paris, France

4. Universté Paris Descartes, Sorbonne Paris Cité, Paris, France

5. Department of Medical Microbiology and Immunology, University of Wisconsin-Madison, Madison, United States

6. Unité Technologie et Service BioImagerie Ultrastructural, Institut Pasteur, Paris, France

7. Unité Technologie et Service Spectrométrie de Masse pour la Biologie, Institut Pasteur; UMR 3528, CNRS 75015, Paris, France

8. Plate-forme de Cristallographie-C2RT, Institut Pasteur; UMR3528, CNRS 75015, Paris, France

9. Department of Microbiology, Harvard Medical School, Boston, United States

Abstract

Lytic transglycosylases (LT) are enzymes involved in peptidoglycan (PG) remodeling. However, their contribution to cell-wall-modifying complexes and their potential as antimicrobial drug targets remains unclear. Here, we determined a high-resolution structure of the LT, an outer membrane lipoprotein from Neisseria species with a disordered active site helix (alpha helix 30). We show that deletion of the conserved alpha-helix 30 interferes with the integrity of the cell wall, disrupts cell division, cell separation, and impairs the fitness of the human pathogen Neisseria meningitidis during infection. Additionally, deletion of alpha-helix 30 results in hyperacetylated PG, suggesting this LtgA variant affects the function of the PG de-O-acetylase (Ape 1). Our study revealed that Ape 1 requires LtgA for optimal function, demonstrating that LTs can modulate the activity of their protein-binding partner. We show that targeting specific domains in LTs can be lethal, which opens the possibility that LTs are useful drug-targets.

Funder

European Molecular Biology Organization

European Research Council

Fondation pour la Recherche Médicale

Institut Carnot-Pasteur

Institut Carnot Pasteur Microbes and Sante

Publisher

eLife Sciences Publications, Ltd

Subject

General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,General Medicine,General Neuroscience

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