» Articles » PMID: 27323865

Systematic Protein Interactome Analysis of Glycosaminoglycans Revealed YcbS As a Novel Bacterial Virulence Factor

Overview
Journal Sci Rep
Specialty Science
Date 2016 Jun 22
PMID 27323865
Citations 6
Authors
Affiliations
Soon will be listed here.
Abstract

Microbial pathogens have evolved several strategies for interacting with host cell components, such as glycosaminoglycans (GAGs). Some microbial proteins involved in host-GAG binding have been described; however, a systematic study on microbial proteome-mammalian GAG interactions has not been conducted. Here, we used Escherichia coli proteome chips to probe four typical mammalian GAGs, heparin, heparan sulphate (HS), chondroitin sulphate B (CSB), and chondroitin sulphate C (CSC), and identified 185 heparin-, 62 HS-, 98 CSB-, and 101 CSC-interacting proteins. Bioinformatics analyses revealed the unique functions of heparin- and HS-specific interacting proteins in glycine, serine, and threonine metabolism. Among all the GAG-interacting proteins, three were outer membrane proteins (MbhA, YcbS, and YmgH). Invasion assays confirmed that mutant E. coli lacking ycbS could not invade the epithelial cells. Introducing plasmid carrying ycbS complemented the invading defects at ycbS lacking E. coli mutant, that can be further improved by overexpressing ycbS. Preblocking epithelial cells with YcbS reduced the percentage of E. coli invasions. Moreover, we observed that whole components of the ycb operon were crucial for invasion. The displacement assay revealed that YcbS binds to the laminin-binding site of heparin and might affect the host extracellular matrix structure by displacing heparin from laminin.

Citing Articles

A Systems View of the Heparan Sulfate Interactome.

Gomez Toledo A, Sorrentino J, Sandoval D, Malmstrom J, Lewis N, Esko J J Histochem Cytochem. 2021; 69(2):105-119.

PMID: 33494649 PMC: 7841697. DOI: 10.1369/0022155420988661.


GAG-DB, the New Interface of the Three-Dimensional Landscape of Glycosaminoglycans.

Perez S, Bonnardel F, Lisacek F, Imberty A, Ricard Blum S, Makshakova O Biomolecules. 2020; 10(12).

PMID: 33322545 PMC: 7763844. DOI: 10.3390/biom10121660.


Developments and Applications of Functional Protein Microarrays.

Syu G, Dunn J, Zhu H Mol Cell Proteomics. 2020; 19(6):916-927.

PMID: 32303587 PMC: 7261817. DOI: 10.1074/mcp.R120.001936.


Expression and Functional Characterization of Various Chaperon-Usher Fimbriae, Curli Fimbriae, and Type 4 Pili of Enterohemorrhagic O157:H7 Sakai.

Elpers L, Hensel M Front Microbiol. 2020; 11:378.

PMID: 32265855 PMC: 7098969. DOI: 10.3389/fmicb.2020.00378.


Automatic Spot Identification Method for High Throughput Surface Plasmon Resonance Imaging Analysis.

Wang Z, Huang X, Cheng Z Biosensors (Basel). 2018; 8(3).

PMID: 30217054 PMC: 6163621. DOI: 10.3390/bios8030085.


References
1.
Somerville G, Proctor R . At the crossroads of bacterial metabolism and virulence factor synthesis in Staphylococci. Microbiol Mol Biol Rev. 2009; 73(2):233-48. PMC: 2698418. DOI: 10.1128/MMBR.00005-09. View

2.
Bendak K, Loughlin F, Cheung V, OConnell M, Crossley M, Mackay J . A rapid method for assessing the RNA-binding potential of a protein. Nucleic Acids Res. 2012; 40(14):e105. PMC: 3413103. DOI: 10.1093/nar/gks285. View

3.
Tsubota Y, Yasuda C, Kariya Y, Ogawa T, Hirosaki T, Mizushima H . Regulation of biological activity and matrix assembly of laminin-5 by COOH-terminal, LG4-5 domain of alpha3 chain. J Biol Chem. 2005; 280(15):14370-7. DOI: 10.1074/jbc.M413051200. View

4.
Gottesman S, Stout V . Regulation of capsular polysaccharide synthesis in Escherichia coli K12. Mol Microbiol. 1991; 5(7):1599-606. DOI: 10.1111/j.1365-2958.1991.tb01906.x. View

5.
Hu W, Chang G, Chen S, Kuo Y . Kinetic analysis of beta-amyloid peptide aggregation induced by metal ions based on surface plasmon resonance biosensing. J Neurosci Methods. 2006; 154(1-2):190-7. DOI: 10.1016/j.jneumeth.2005.12.016. View