The kinetic parameters and energy cost of the Hsp70 chaperone as a polypeptide unfoldase.


Autoria(s): Sharma S.K.; De los Rios P.; Christen P.; Lustig A.; Goloubinoff P.
Data(s)

2010

Resumo

Hsp70-Hsp40-NEF and possibly Hsp100 are the only known molecular chaperones that can use the energy of ATP to convert stably pre-aggregated polypeptides into natively refolded proteins. However, the kinetic parameters and ATP costs have remained elusive because refolding reactions have only been successful with a molar excess of chaperones over their polypeptide substrates. Here we describe a stable, misfolded luciferase species that can be efficiently renatured by substoichiometric amounts of bacterial Hsp70-Hsp40-NEF. The reactivation rates increased with substrate concentration and followed saturation kinetics, thus allowing the determination of apparent V(max)' and K(m)' values for a chaperone-mediated renaturation reaction for the first time. Under the in vitro conditions used, one Hsp70 molecule consumed five ATPs to effectively unfold a single misfolded protein into an intermediate that, upon chaperone dissociation, spontaneously refolded to the native state, a process with an ATP cost a thousand times lower than expected for protein degradation and resynthesis.

Identificador

http://serval.unil.ch/?id=serval:BIB_EE68E738E1A5

isbn:1552-4469 (Electronic)

pmid:20953191

doi:10.1038/nchembio.455

isiid:000284214700021

Idioma(s)

en

Fonte

Nature Chemical Biology, vol. 6, no. 12, pp. 914-920

Palavras-Chave #Adenosine Triphosphatases/metabolism; Adenosine Triphosphate/metabolism; Energy Metabolism/physiology; Escherichia coli/metabolism; Fluorescent Dyes; Freezing; Genes, Reporter; HSP70 Heat-Shock Proteins/metabolism; HSP70 Heat-Shock Proteins/physiology; Kinetics; Luciferases/metabolism; Molecular Chaperones/metabolism; Molecular Chaperones/physiology; Polynucleotide 5'-Hydroxyl-Kinase/metabolism; Protein Folding; Substrate Specificity; Thiazoles; Urea/chemistry
Tipo

info:eu-repo/semantics/article

article