6V4V
The crystal structure of BonA from Acinetobacter baumannii
Summary for 6V4V
Entry DOI | 10.2210/pdb6v4v/pdb |
Descriptor | BON domain protein, ZINC ION (3 entities in total) |
Functional Keywords | periplasmic, lipoprotein, divisome protein, cell motility, outer-membrane stability, lipid binding protein |
Biological source | Acinetobacter baumannii |
Total number of polymer chains | 1 |
Total formula weight | 20908.30 |
Authors | Grinter, R. (deposition date: 2019-12-02, release date: 2021-06-02, Last modification date: 2024-11-06) |
Primary citation | Grinter, R.,Morris, F.C.,Dunstan, R.A.,Leung, P.M.,Kropp, A.,Belousoff, M.,Gunasinghe, S.D.,Scott, N.E.,Beckham, S.,Peleg, A.Y.,Greening, C.,Li, J.,Heinz, E.,Lithgow, T. BonA from Acinetobacter baumannii Forms a Divisome-Localized Decamer That Supports Outer Envelope Function. Mbio, :e0148021-e0148021, 2021 Cited by PubMed Abstract: Acinetobacter baumannii is a high-risk pathogen due to the rapid global spread of multidrug-resistant lineages. Its phylogenetic divergence from other ESKAPE pathogens means that determinants of its antimicrobial resistance can be difficult to extrapolate from other widely studied bacteria. A recent study showed that A. baumannii upregulates production of an outer membrane lipoprotein, which we designate BonA, in response to challenge with polymyxins. Here, we show that BonA has limited sequence similarity and distinct structural features compared to lipoproteins from other bacterial species. Analyses through X-ray crystallography, small-angle X-ray scattering, electron microscopy, and multiangle light scattering demonstrate that BonA has a dual BON (acterial smY and odulation) domain architecture and forms a decamer via an unusual oligomerization mechanism. This analysis also indicates this decamer is transient, suggesting dynamic oligomerization plays a role in BonA function. Antisera recognizing BonA shows it is an outer membrane protein localized to the divisome. Loss of BonA modulates the density of the outer membrane, consistent with a change in its structure or link to the peptidoglycan, and prevents motility in a clinical strain (ATCC 17978). Consistent with these findings, the dimensions of the BonA decamer are sufficient to permeate the peptidoglycan layer, with the potential to form a membrane-spanning complex during cell division. The pathogen Acinetobacter baumannii is considered an urgent threat to human health. A. baumannii is highly resistant to treatment with antibiotics, in part due to its protective cell envelope. This bacterium is only distantly related to other bacterial pathogens, so its cell envelope has distinct properties and contains components distinct from those of other bacteria that support its function. Here, we report the discovery of BonA, a protein that supports A. baumannii outer envelope function and is required for cell motility. We determine the atomic structure of BonA and show that it forms part of the cell division machinery and functions by forming a complex, features that mirror those of distantly related homologs from other bacteria. By improving our understanding of the A. baumannii cell envelope this work will assist in treating this pathogen. PubMed: 34311571DOI: 10.1128/mBio.01480-21 PDB entries with the same primary citation |
Experimental method | X-RAY DIFFRACTION (1.65 Å) |
Structure validation
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