6MI8 image
Deposition Date 2018-09-19
Release Date 2019-04-03
Last Version Date 2025-06-04
Entry Detail
PDB ID:
6MI8
Title:
Cryo-EM Structure of vanadate-trapped E.coli LptB2FGC
Biological Source:
Source Organism:
Host Organism:
Method Details:
Experimental Method:
Resolution:
4.30 Å
Aggregation State:
PARTICLE
Reconstruction Method:
SINGLE PARTICLE
Macromolecular Entities
Polymer Type:polypeptide(L)
Molecule:Lipopolysaccharide export system ATP-binding protein LptB
Gene (Uniprot):lptB
Chain IDs:A, B
Chain Length:251
Number of Molecules:2
Biological Source:Escherichia coli (strain K12)
Polymer Type:polypeptide(L)
Molecule:Lipopolysaccharide export system permease protein LptF
Gene (Uniprot):lptF
Chain IDs:C (auth: F)
Chain Length:366
Number of Molecules:1
Biological Source:Escherichia coli (strain K12)
Polymer Type:polypeptide(L)
Molecule:Lipopolysaccharide export system permease protein LptG
Gene (Uniprot):lptG
Chain IDs:D (auth: G)
Chain Length:360
Number of Molecules:1
Biological Source:Escherichia coli (strain K12)
Ligand Molecules
Primary Citation
Structural basis of lipopolysaccharide extraction by the LptB2FGC complex.
Nature 567 486 490 (2019)
PMID: 30894744 DOI: 10.1038/s41586-019-1025-6

Abstact

In Gram-negative bacteria, lipopolysaccharide is essential for outer membrane formation and antibiotic resistance. The seven lipopolysaccharide transport (Lpt) proteins A-G move lipopolysaccharide from the inner to the outer membrane. The ATP-binding cassette transporter LptB2FG, which tightly associates with LptC, extracts lipopolysaccharide out of the inner membrane. The mechanism of the LptB2FG-LptC complex (LptB2FGC) and the role of LptC in lipopolysaccharide transport are poorly understood. Here we characterize the structures of LptB2FG and LptB2FGC in nucleotide-free and vanadate-trapped states, using single-particle cryo-electron microscopy. These structures resolve the bound lipopolysaccharide, reveal transporter-lipopolysaccharide interactions with side-chain details and uncover how the capture and extrusion of lipopolysaccharide are coupled to conformational rearrangements of LptB2FGC. LptC inserts its transmembrane helix between the two transmembrane domains of LptB2FG, which represents a previously unknown regulatory mechanism for ATP-binding cassette transporters. Our results suggest a role for LptC in achieving efficient lipopolysaccharide transport, by coordinating the action of LptB2FG in the inner membrane and Lpt protein interactions in the periplasm.

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