For cells to function, the concentrations of all proteins in the cell must be maintained at the proper levels (proteostasis). This task – complicated by cellular stresses, protein misfolding, aggregation, and degradation – is performed by a collection of chaperones that alter the configurational landscape of a given client protein through the formation of protein-chaperone complexes. The set of all such complexes and the transitions between them form the proteostasis network. Recently, a computational model was introduced (FoldEco) that synthesizes experimental data into a system-wide description of the proteostasis network of E. coli. This model describes the concentrations over time of all the species in the system, which include differen...
Molecular chaperones play a central role in protein homeostasis (a.k.a. proteostasis) by balancing p...
Maintenance of a properly folded proteome is critical for bacterial survival at notably different gr...
The three-dimensional (3D) native structure of most proteins is crucial for their functions. Despite...
<div><p>For cells to function, the concentrations of all proteins in the cell must be maintained at ...
Chaperones are protein complexes that help to fold and disaggregate a cell's proteins. It is not und...
To gain insight into the interplay of processes and species that maintain a correctly folded, functi...
To gain insight into the interplay of processes and species that maintain a correctly folded, functi...
SummaryTo gain insight into the interplay of processes and species that maintain a correctly folded,...
The folding fate of a protein in vivo is determined by the interplay between a protein’s folding ene...
SummaryThe folding fate of a protein in vivo is determined by the interplay between a protein’s fold...
MOTIVATION: Despite intense effort, it has been difficult to explain chaperone dependencies of prote...
Although molecular chaperones are essential components of protein homeostatic machinery, their mecha...
While the entire proteome is synthesized on cytoplasmic ribosomes, almost half associates with, loca...
Protein folding is often hampered by protein aggregation, which can be prevented by a variety of ...
Diverse families of molecular chaperones cooperate to effect protein homeostasis, but the extent and...
Molecular chaperones play a central role in protein homeostasis (a.k.a. proteostasis) by balancing p...
Maintenance of a properly folded proteome is critical for bacterial survival at notably different gr...
The three-dimensional (3D) native structure of most proteins is crucial for their functions. Despite...
<div><p>For cells to function, the concentrations of all proteins in the cell must be maintained at ...
Chaperones are protein complexes that help to fold and disaggregate a cell's proteins. It is not und...
To gain insight into the interplay of processes and species that maintain a correctly folded, functi...
To gain insight into the interplay of processes and species that maintain a correctly folded, functi...
SummaryTo gain insight into the interplay of processes and species that maintain a correctly folded,...
The folding fate of a protein in vivo is determined by the interplay between a protein’s folding ene...
SummaryThe folding fate of a protein in vivo is determined by the interplay between a protein’s fold...
MOTIVATION: Despite intense effort, it has been difficult to explain chaperone dependencies of prote...
Although molecular chaperones are essential components of protein homeostatic machinery, their mecha...
While the entire proteome is synthesized on cytoplasmic ribosomes, almost half associates with, loca...
Protein folding is often hampered by protein aggregation, which can be prevented by a variety of ...
Diverse families of molecular chaperones cooperate to effect protein homeostasis, but the extent and...
Molecular chaperones play a central role in protein homeostasis (a.k.a. proteostasis) by balancing p...
Maintenance of a properly folded proteome is critical for bacterial survival at notably different gr...
The three-dimensional (3D) native structure of most proteins is crucial for their functions. Despite...