The Library
A mutation leading to super-assembly of twin-arginine translocase (Tat) protein complexes
Tools
Patel, Roshani, Vasilev, Cvetelin, Beck, Daniel, Monteferrante, Carmine G., Dijl, Jan Maarten van, Hunter, C. Neil, Smith, Corinne J. and Robinson, Colin (2014) A mutation leading to super-assembly of twin-arginine translocase (Tat) protein complexes. Biochimica et Biophysica Acta (BBA) - Molecular Cell Research, Volume 1843 (Number 9). pp. 1978-1986. doi:10.1016/j.bbamcr.2014.05.009 ISSN 0167-4889.
Research output not available from this repository.
Request-a-Copy directly from author or use local Library Get it For Me service.
Official URL: http://dx.doi.org/10.1016/j.bbamcr.2014.05.009
Abstract
The Tat system transports folded proteins across the bacterial plasma membrane. The mechanism is believed to involve coalescence of a TatC-containing unit with a separate TatA complex, but the full translocation complex has never been visualised and the assembly process is poorly defined. We report the analysis of the Bacillus subtilis TatAyCy system, which occurs as separate TatAyCy and TatAy complexes at steady state, using single-particle electron microscopy (EM) and advanced atomic force microscopy (AFM) approaches. We show that a P2A mutation in the TatAy subunit leads to apparent super-assembly of Tat complexes. Purification of TatCy-containing complexes leads to a large increase in the TatA:TatC ratio, suggesting that TatAyP2A complexes may have attached to the TatAyCy complex. EM and AFM analyses show that the wild-type TatAyCy complex purifies as roughly spherical complexes of 9–16 nm diameter, whereas the P2A mutation leads to accumulation of large (up to 500 nm long) fibrils that are chains of numerous complexes. Time lapsed AFM imaging, recorded on fibrils under liquid, shows that they adopt a variety of tightly curved conformations, with radii of curvature of 10–12 nm comparable to the size of single TatAyP2A complexes. The combined data indicate that the mutation leads to super-assembly of TatAyP2A complexes and we propose that an individual TatAyP2A complex assembles initially with a TatAyP2ACy complex, after which further TatAyP2A complexes attach to each other. The data further suggest that the N-terminal extracytoplasmic domain of TatAy plays an essential role in Tat complex interactions.
Item Type: | Journal Article | ||||||||||
---|---|---|---|---|---|---|---|---|---|---|---|
Divisions: | Faculty of Science, Engineering and Medicine > Science > Life Sciences (2010- ) | ||||||||||
Journal or Publication Title: | Biochimica et Biophysica Acta (BBA) - Molecular Cell Research | ||||||||||
Publisher: | Elsevier | ||||||||||
ISSN: | 0167-4889 | ||||||||||
Official Date: | September 2014 | ||||||||||
Dates: |
|
||||||||||
Volume: | Volume 1843 | ||||||||||
Number: | Number 9 | ||||||||||
Page Range: | pp. 1978-1986 | ||||||||||
DOI: | 10.1016/j.bbamcr.2014.05.009 | ||||||||||
Status: | Peer Reviewed | ||||||||||
Publication Status: | Published | ||||||||||
Access rights to Published version: | Open Access (Creative Commons) |
Request changes or add full text files to a record
Repository staff actions (login required)
View Item |