2PIL image
Deposition Date 1998-03-02
Release Date 1998-05-27
Last Version Date 2024-11-06
Entry Detail
PDB ID:
2PIL
Keywords:
Title:
Crystallographic Structure of Phosphorylated Pilin from Neisseria: Phosphoserine Sites Modify Type IV Pilus Surface Chemistry
Biological Source:
Source Organism:
Method Details:
Experimental Method:
Resolution:
2.60 Å
R-Value Work:
0.18
R-Value Observed:
0.18
Space Group:
C 2 2 2
Macromolecular Entities
Structures with similar UniProt ID
Protein Blast
Polymer Type:polypeptide(L)
Molecule:TYPE 4 PILIN
Gene (Uniprot):pilE1
Chain IDs:A
Chain Length:158
Number of Molecules:1
Biological Source:Neisseria gonorrhoeae
Modified Residue
Compound ID Chain ID Parent Comp ID Details 2D Image
MEA A PHE N-METHYLPHENYLALANINE
SEP A SER PHOSPHOSERINE
SER A SER GLYCOSYLATION SITE
Primary Citation
Crystallographic structure reveals phosphorylated pilin from Neisseria: phosphoserine sites modify type IV pilus surface chemistry and fibre morphology.
Mol.Microbiol. 31 743 752 (1999)
PMID: 10048019 DOI: 10.1046/j.1365-2958.1999.01184.x

Abstact

Understanding the structural biology of type IV pili, fibres responsible for the virulent attachment and motility of numerous bacterial pathogens, requires a detailed understanding of the three-dimensional structure and chemistry of the constituent pilin subunit. X-ray crystallographic refinement of Neisseria gonorrhoeae pilin against diffraction data to 2.6 A resolution, coupled with mass spectrometry of peptide fragments, reveals phosphoserine at residue 68. Phosphoserine is exposed on the surface of the modelled type IV pilus at the interface of neighbouring pilin molecules. The site-specific mutation of serine 68 to alanine showed that the loss of the phosphorylation alters the morphology of fibres examined by electron microscopy without a notable effect on adhesion, transformation, piliation or twitching motility. The structural and chemical characterization of protein phosphoserine in type IV pilin subunits is an important indication that this modification, key to numerous regulatory aspects of eukaryotic cell biology, exists in the virulence factor proteins of bacterial pathogens. These O-linked phosphate modifications, unusual in prokaryotes, thus merit study for possible roles in pilus biogenesis and modulation of pilin chemistry for optimal in vivo function.

Legend

Protein

Chemical

Disease

Primary Citation of related structures