Maintenance of a properly folded proteome is critical for bacterial survival at notably different growth temperatures. Understanding the molecular basis of thermoadaptation has progressed in two main directions, the sequence and structural basis of protein thermostability and the mechanistic principles of protein quality control assisted by chaperones. Yet we do not fully understand how structural integrity of the entire proteome is maintained under stress and how it affects cellular fitness. To address this challenge, we reconstruct a genome-scale protein-folding network for Escherichia coli and formulate a computational model, FoldME, that provides statistical descriptions of multiscale cellular response consistent with many datasets. Fol...
Because a cell must adapt to different stresses and growth rates, its proteostasis system must too. ...
Because a cell must adapt to different stresses and growth rates, its proteostasis system must too. ...
Because a cell must adapt to different stresses and growth rates, its proteostasis system must too. ...
International audienceAlthough the effect of temperature on microbial growth has been widely studied...
International audienceAlthough the effect of temperature on microbial growth has been widely studied...
AbstractBiological cells are extremely sensitive to temperature. What is the mechanism? We compute t...
Chaperones are protein complexes that help to fold and disaggregate a cell's proteins. It is not und...
Temperature-induced cell death is thought to be due to protein denaturation, but the determinants of...
Temperature-induced cell death is thought to be due to protein denaturation, but the determinants of...
Stress-inducible molecular chaperones have essential roles in maintaining protein homeostasis, but t...
Although molecular chaperones are essential components of protein homeostatic machinery, their mecha...
Diverse families of molecular chaperones cooperate to effect protein homeostasis, but the extent and...
Genome-scale network reconstruction has enabled predictive modeling of metabolism for many systems. ...
Trigger factor is the first molecular chaperone interacting cotranslationally with virtually all nas...
Prokaryotes evolved to thrive in an extremely diverse set of habitats, and their proteomes bear sign...
Because a cell must adapt to different stresses and growth rates, its proteostasis system must too. ...
Because a cell must adapt to different stresses and growth rates, its proteostasis system must too. ...
Because a cell must adapt to different stresses and growth rates, its proteostasis system must too. ...
International audienceAlthough the effect of temperature on microbial growth has been widely studied...
International audienceAlthough the effect of temperature on microbial growth has been widely studied...
AbstractBiological cells are extremely sensitive to temperature. What is the mechanism? We compute t...
Chaperones are protein complexes that help to fold and disaggregate a cell's proteins. It is not und...
Temperature-induced cell death is thought to be due to protein denaturation, but the determinants of...
Temperature-induced cell death is thought to be due to protein denaturation, but the determinants of...
Stress-inducible molecular chaperones have essential roles in maintaining protein homeostasis, but t...
Although molecular chaperones are essential components of protein homeostatic machinery, their mecha...
Diverse families of molecular chaperones cooperate to effect protein homeostasis, but the extent and...
Genome-scale network reconstruction has enabled predictive modeling of metabolism for many systems. ...
Trigger factor is the first molecular chaperone interacting cotranslationally with virtually all nas...
Prokaryotes evolved to thrive in an extremely diverse set of habitats, and their proteomes bear sign...
Because a cell must adapt to different stresses and growth rates, its proteostasis system must too. ...
Because a cell must adapt to different stresses and growth rates, its proteostasis system must too. ...
Because a cell must adapt to different stresses and growth rates, its proteostasis system must too. ...