Chaperones play a central part in the quality control system in cells by clearing misfolded and aggregated proteins. The chaperone DnaK acts as a sensor for molecular stress by recognising short hydrophobic stretches of misfolded proteins. As the level of unfolded protein is a function of protein stability, we hypothesised that the level of DnaK response upon overexpression of recombinant proteins would be correlated to stability. Using a set of mutants of the λ-repressor with varying thermal stabilities and a fluorescent reporter system, the effect of stability on DnaK response and protein abundance was investigated. Our results demonstrate that the initial DnaK response is largely dependent on protein synthesis rate but as the recombinant...
<p>The synthesis and the degradation of DnaA are both subject to control mechanisms that respond to ...
Classic in vitro studies show that the Hsp70 chaperone system from Escherichia coli (DnaK-DnaJ-GrpE,...
Cellular chaperone networks prevent potentially toxic protein aggregation and ensure proteome integr...
Chaperones play a central part in the quality control system in cells by clearing misfolded and aggr...
Misfolding-prone proteins produced in bacteria usually fail to adopt their native conformation and a...
AbstractUnder non-stressed conditions in Escherichia coli, the heat shock transcription factor σ32 i...
Stress-inducible molecular chaperones have essential roles in maintaining protein homeostasis, but t...
DnaK is a member of the Hsp70 family of molecular chaperones. This molecular machine couples the bin...
DnaK is a member of the Hsp70 family of molecular chaperones. This molecular machine couples the bin...
DnaK is essential for starvation-induced resistance to heat, oxidation, and reductive division in Es...
The Escherichia coli molecular chaperone DnaK has been implicated as a critical protein in the norma...
The physiological consequences of molecular chaperone overproduction in Escherichia coli are present...
<div><p>Protein chaperones are essential in all domains of life to prevent and resolve protein misfo...
In Escherichia coli, the ribosome-associated Trigger Factor (TF) cooperates with the DnaK system in ...
Cellular chaperone networks prevent potentially toxic protein aggregation and ensure proteome integr...
<p>The synthesis and the degradation of DnaA are both subject to control mechanisms that respond to ...
Classic in vitro studies show that the Hsp70 chaperone system from Escherichia coli (DnaK-DnaJ-GrpE,...
Cellular chaperone networks prevent potentially toxic protein aggregation and ensure proteome integr...
Chaperones play a central part in the quality control system in cells by clearing misfolded and aggr...
Misfolding-prone proteins produced in bacteria usually fail to adopt their native conformation and a...
AbstractUnder non-stressed conditions in Escherichia coli, the heat shock transcription factor σ32 i...
Stress-inducible molecular chaperones have essential roles in maintaining protein homeostasis, but t...
DnaK is a member of the Hsp70 family of molecular chaperones. This molecular machine couples the bin...
DnaK is a member of the Hsp70 family of molecular chaperones. This molecular machine couples the bin...
DnaK is essential for starvation-induced resistance to heat, oxidation, and reductive division in Es...
The Escherichia coli molecular chaperone DnaK has been implicated as a critical protein in the norma...
The physiological consequences of molecular chaperone overproduction in Escherichia coli are present...
<div><p>Protein chaperones are essential in all domains of life to prevent and resolve protein misfo...
In Escherichia coli, the ribosome-associated Trigger Factor (TF) cooperates with the DnaK system in ...
Cellular chaperone networks prevent potentially toxic protein aggregation and ensure proteome integr...
<p>The synthesis and the degradation of DnaA are both subject to control mechanisms that respond to ...
Classic in vitro studies show that the Hsp70 chaperone system from Escherichia coli (DnaK-DnaJ-GrpE,...
Cellular chaperone networks prevent potentially toxic protein aggregation and ensure proteome integr...