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Mechanism of Amyloidogenesis of a Bacterial AAA+ Chaperone

Authors :
Thiago V. Seraphim
Simon Sharpe
Christopher Ing
Amy Won
Kaiyin Liu
Nareg Kara-Yacoubian
Nilmadhab Chakrabarti
Jason Yau
Régis Pomès
Patrick Farber
Lewis E. Kay
S.W.S. Chan
Walid A. Houry
Christopher M. Yip
Vaibhav Bhandari
Source :
Structure. 24:1095-1109
Publication Year :
2016
Publisher :
Elsevier BV, 2016.

Abstract

Amyloids are fibrillar protein superstructures that are commonly associated with diseases in humans and with physiological functions in various organisms. The precise mechanisms of amyloid formation remain to be elucidated. Surprisingly, we discovered that a bacterial Escherichia coli chaperone-like ATPase, regulatory ATPase variant A (RavA), and specifically the LARA domain in RavA, forms amyloids under acidic conditions at elevated temperatures. RavA is involved in modulating the proper assembly of membrane respiratory complexes. LARA contains an N-terminal loop region followed by a β-sandwich-like folded core. Several approaches, including nuclear magnetic resonance spectroscopy and molecular dynamics simulations, were used to determine the mechanism by which LARA switches to an amyloid state. These studies revealed that the folded core of LARA is amyloidogenic and is protected by its N-terminal loop. At low pH and high temperatures, the interaction of the N-terminal loop with the folded core is disrupted, leading to amyloid formation.

Details

ISSN :
09692126
Volume :
24
Database :
OpenAIRE
Journal :
Structure
Accession number :
edsair.doi.dedup.....b996f8f09aa08edfbb5da00e82dc7527
Full Text :
https://doi.org/10.1016/j.str.2016.05.002