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  4. Overlapping transport and chaperone-binding functions within a bacterial twin-arginine signal peptide
 
research article

Overlapping transport and chaperone-binding functions within a bacterial twin-arginine signal peptide

Grahl, Sabine
•
Maillard, Julien  
•
Spronk, Chris A. E. M.
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2012
Molecular Microbiology

The twin-arginine translocation (Tat) pathway is a protein targeting system present in many prokaryotes. The physiological role of the Tat pathway is the transmembrane translocation of fully-folded proteins, which are targeted by N-terminal signal peptides bearing conserved SRRxFLK twin-arginine amino acid motifs. In Escherichia coli the majority of Tat targeted proteins bind redox cofactors and it is important that only mature, cofactor-loaded precursors are presented for export. Cellular processes have been unearthed that sequence these events, for example the signal peptide of the periplasmic nitrate reductase (NapA) is bound by a cytoplasmic chaperone (NapD) that is thought to regulate assembly and export of the enzyme. In this work, genetic, biophysical and structural approaches were taken to dissect the interaction between NapD and the NapA signal peptide. A NapD binding epitope was identified towards the N-terminus of the signal peptide, which overlapped significantly with the twin-arginine targeting motif. NMR spectroscopy revealed that the signal peptide adopted a a-helical conformation when bound by NapD, and substitution of single residues within the NapA signal peptide was sufficient to disrupt the interaction. This work provides an increased level of understanding of signal peptide function on the bacterial Tat pathway.

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Type
research article
DOI
10.1111/j.1365-2958.2012.08005.x
Web of Science ID

WOS:000301430500012

Author(s)
Grahl, Sabine
Maillard, Julien  
Spronk, Chris A. E. M.
Vuister, Geerten W.
Sargent, Frank
Date Issued

2012

Publisher

Wiley-Blackwell

Published in
Molecular Microbiology
Volume

83

Start page

1254

End page

1267

Subjects

Periplasmic Nitrate Reductase

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Escherichia-Coli K-12

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Nmr Chemical-Shifts

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Structural-Analysis

•

Translocation Pathway

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Protein Translocation

•

System

•

Recognition

•

Component

•

Export

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LBE  
Available on Infoscience
April 12, 2012
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/79321
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