The protein homeostasis network ensures a proper balance between synthesis, folding, and degradation of all cellular proteins. DnaK and trigger factor (TF) are ubiquitous bacterial molecular chaperones that assist in protein folding, as well as preventing protein misfolding and aggregation. In Escherichia coli, DnaK and TF possess partially overlapping functions. Their combined depletion results in proteostasis collapse and is synthetically lethal at temperatures above 30°C. To increase our understanding on how proteostasis is maintained in Gram-positive bacteria, we have investigated the physiological effects of deleting dnaK and tig (encoding for DnaK and TF) in Bacillus subtilis. We show that combined deletion of dnaK and tig in B. subti...
Misfolding and aggregation of protein molecules are major threats to all living organisms. Therefore...
Abstract The peptidoglycan layer is responsible for maintaining bacterial cell shape and permitting ...
The Gram-positive eubacterium Bacillus subtilis is well known for its high capacity to secrete prote...
<div><p>Protein chaperones are essential in all domains of life to prevent and resolve protein misfo...
AbstractA role for DnaK, the major E. coli Hsp70, in chaperoning de novo protein folding has remaine...
Escherichia coli trigger factor (TF) and DnaK cooperate in the folding of newly synthesized proteins...
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...
Many stress conditions a cell encounters threaten the continuation of basic biological processes ult...
Cellular chaperone networks prevent potentially toxic protein aggregation and ensure proteome integr...
Cellular chaperone networks prevent potentially toxic protein aggregation and ensure proteome integr...
The physiological consequences of molecular chaperone overproduction in Escherichia coli are present...
Bacteria are separated from the environment by a cell envelope, which forms the barrier between the ...
Bacterial replication, as the starting point of the cell cycle, enables the duplication of genomic ...
Bacteria are separated from the environment by a cell envelope, which forms the barrier between the ...
Misfolding and aggregation of protein molecules are major threats to all living organisms. Therefore...
Abstract The peptidoglycan layer is responsible for maintaining bacterial cell shape and permitting ...
The Gram-positive eubacterium Bacillus subtilis is well known for its high capacity to secrete prote...
<div><p>Protein chaperones are essential in all domains of life to prevent and resolve protein misfo...
AbstractA role for DnaK, the major E. coli Hsp70, in chaperoning de novo protein folding has remaine...
Escherichia coli trigger factor (TF) and DnaK cooperate in the folding of newly synthesized proteins...
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...
Many stress conditions a cell encounters threaten the continuation of basic biological processes ult...
Cellular chaperone networks prevent potentially toxic protein aggregation and ensure proteome integr...
Cellular chaperone networks prevent potentially toxic protein aggregation and ensure proteome integr...
The physiological consequences of molecular chaperone overproduction in Escherichia coli are present...
Bacteria are separated from the environment by a cell envelope, which forms the barrier between the ...
Bacterial replication, as the starting point of the cell cycle, enables the duplication of genomic ...
Bacteria are separated from the environment by a cell envelope, which forms the barrier between the ...
Misfolding and aggregation of protein molecules are major threats to all living organisms. Therefore...
Abstract The peptidoglycan layer is responsible for maintaining bacterial cell shape and permitting ...
The Gram-positive eubacterium Bacillus subtilis is well known for its high capacity to secrete prote...