» Articles » PMID: 30894747

Structural Basis of Unidirectional Export of Lipopolysaccharide to the Cell Surface

Overview
Journal Nature
Specialty Science
Date 2019 Mar 22
PMID 30894747
Citations 79
Authors
Affiliations
Soon will be listed here.
Abstract

Gram-negative bacteria are surrounded by an inner cytoplasmic membrane and by an outer membrane, which serves as a protective barrier to limit entry of many antibiotics. The distinctive properties of the outer membrane are due to the presence of lipopolysaccharide. This large glycolipid, which contains numerous sugars, is made in the cytoplasm; a complex of proteins forms a membrane-to-membrane bridge that mediates transport of lipopolysaccharide from the inner membrane to the cell surface. The inner-membrane components of the protein bridge comprise an ATP-binding cassette transporter that powers transport, but how this transporter ensures unidirectional lipopolysaccharide movement across the bridge to the outer membrane is unknown. Here we describe two crystal structures of a five-component inner-membrane complex that contains all the proteins required to extract lipopolysaccharide from the membrane and pass it to the protein bridge. Analysis of these structures, combined with biochemical and genetic experiments, identifies the path of lipopolysaccharide entry into the cavity of the transporter and up to the bridge. We also identify a protein gate that must open to allow movement of substrate from the cavity onto the bridge. Lipopolysaccharide entry into the cavity is ATP-independent, but ATP is required for lipopolysaccharide movement past the gate and onto the bridge. Our findings explain how the inner-membrane transport complex controls efficient unidirectional transport of lipopolysaccharide against its concentration gradient.

Citing Articles

ATP-binding cassette (ABC) transporters: structures and roles in bacterial pathogenesis.

How S, Nathan S, Lam S, Chieng S J Zhejiang Univ Sci B. 2025; 26(1):58-75.

PMID: 39815611 PMC: 11735909. DOI: 10.1631/jzus.B2300641.


Multi-omics Analysis of Klebsiella pneumoniae Revealed Opposing Effects of Rutin and Luteolin on Strain Growth.

Wang Z, Shen W, Li Y, Wang X, Zhong X, Wang X Curr Microbiol. 2024; 82(1):9.

PMID: 39585437 DOI: 10.1007/s00284-024-03982-5.


Genome wide structural prediction of ABC transporter systems in .

Mahendran A, Orlando B Front Microbiol. 2024; 15:1469915.

PMID: 39397791 PMC: 11466899. DOI: 10.3389/fmicb.2024.1469915.


Dynamic basis of lipopolysaccharide export by LptBFGC.

Dajka M, Rath T, Morgner N, Joseph B Elife. 2024; 13.

PMID: 39374147 PMC: 11458178. DOI: 10.7554/eLife.99338.


Determination of Initial Rates of Lipopolysaccharide Transport.

Nava M, Rowe S, Taylor R, Kahne D, Nocera D Biochemistry. 2024; 63(19):2440-2448.

PMID: 39264328 PMC: 11447908. DOI: 10.1021/acs.biochem.4c00379.


References
1.
Simpson B, Owens T, Orabella M, Davis R, May J, Trauger S . Identification of Residues in the Lipopolysaccharide ABC Transporter That Coordinate ATPase Activity with Extractor Function. mBio. 2016; 7(5). PMC: 5082905. DOI: 10.1128/mBio.01729-16. View

2.
Ruiz N, Gronenberg L, Kahne D, Silhavy T . Identification of two inner-membrane proteins required for the transport of lipopolysaccharide to the outer membrane of Escherichia coli. Proc Natl Acad Sci U S A. 2008; 105(14):5537-42. PMC: 2291135. DOI: 10.1073/pnas.0801196105. View

3.
Sherman D, Lazarus M, Murphy L, Liu C, Walker S, Ruiz N . Decoupling catalytic activity from biological function of the ATPase that powers lipopolysaccharide transport. Proc Natl Acad Sci U S A. 2014; 111(13):4982-7. PMC: 3977253. DOI: 10.1073/pnas.1323516111. View

4.
May J, Owens T, Mandler M, Simpson B, Lazarus M, Sherman D . The Antibiotic Novobiocin Binds and Activates the ATPase That Powers Lipopolysaccharide Transport. J Am Chem Soc. 2017; 139(48):17221-17224. PMC: 5735422. DOI: 10.1021/jacs.7b07736. View

5.
Sherman D, Xie R, Taylor R, George A, Okuda S, Foster P . Lipopolysaccharide is transported to the cell surface by a membrane-to-membrane protein bridge. Science. 2018; 359(6377):798-801. PMC: 5858563. DOI: 10.1126/science.aar1886. View