Bacteria regulate their cellular resource allocation to enable fast growth-adaptation to a variety of environmental niches. We studied the ribosomal allocation, growth, and expression profiles of two sets of fast-growing mutants of Escherichia coli K-12 MG1655. Mutants with only three of the seven copies of ribosomal RNA operons grew faster than the wild-type strain in minimal media and show similar phenotype to previously studied fast-growing rpoB mutants. Comparing these two different regulatory perturbations (rRNA promoters or rpoB mutations), we show how they reshape the proteome for growth with a concomitant fitness cost. The fast-growing mutants shared downregulation of hedging functions and upregulated growth functions. They showed l...
Here we present evidence that only five of the seven rRNA operons present in Escherichia coli are ne...
For cells to grow faster they must increase their protein production rate. Microorganisms have tradi...
In different environments, bacteria are known to allocate their proteome differently and achieve dif...
Bacteria regulate their cellular resource allocation to enable fast growth-adaptation to a variety o...
Cell growth is determined by substrate availability and the cell's metabolic capacity to assimilate ...
<div><p>Cell growth is determined by substrate availability and the cell’s metabolic capacity to ass...
Maximization of growth rate is an important fitness strategy for bacteria. Bacteria can achieve this...
Bacteria must constantly adapt their growth to changes in nutrient availability; yet despite large-s...
The abundance of proteins expressed in a particular environment are primary determinants of an organ...
Pleiotropic regulatory mutations affect diverse cellular processes, posing a challenge to our unders...
Thesis advisor: Michelle MeyerProkaryotic ribosomes are key to cell viability and an important area ...
Microorganisms in nature are constantly subjected to a limited availability of resources and experie...
In fast-growing bacteria, the genomic location of ribosomal protein (RP) genes is biased towards the...
Cell size control emerges from a regulated balance between the rates of cell growth and division. In...
ABSTRACT Recent works suggest that bacterial gene order links chromosome structure to cell homeostas...
Here we present evidence that only five of the seven rRNA operons present in Escherichia coli are ne...
For cells to grow faster they must increase their protein production rate. Microorganisms have tradi...
In different environments, bacteria are known to allocate their proteome differently and achieve dif...
Bacteria regulate their cellular resource allocation to enable fast growth-adaptation to a variety o...
Cell growth is determined by substrate availability and the cell's metabolic capacity to assimilate ...
<div><p>Cell growth is determined by substrate availability and the cell’s metabolic capacity to ass...
Maximization of growth rate is an important fitness strategy for bacteria. Bacteria can achieve this...
Bacteria must constantly adapt their growth to changes in nutrient availability; yet despite large-s...
The abundance of proteins expressed in a particular environment are primary determinants of an organ...
Pleiotropic regulatory mutations affect diverse cellular processes, posing a challenge to our unders...
Thesis advisor: Michelle MeyerProkaryotic ribosomes are key to cell viability and an important area ...
Microorganisms in nature are constantly subjected to a limited availability of resources and experie...
In fast-growing bacteria, the genomic location of ribosomal protein (RP) genes is biased towards the...
Cell size control emerges from a regulated balance between the rates of cell growth and division. In...
ABSTRACT Recent works suggest that bacterial gene order links chromosome structure to cell homeostas...
Here we present evidence that only five of the seven rRNA operons present in Escherichia coli are ne...
For cells to grow faster they must increase their protein production rate. Microorganisms have tradi...
In different environments, bacteria are known to allocate their proteome differently and achieve dif...