Bacteria have developed a variety of mechanisms to adapt to changes in the environment in ways that are often vital to their proliferation and survival. Single-molecule fluorescence imaging and tracking have elucidated the complex mechanisms of these responses in a variety of bacteria. However, a technological gap remains: due to cell sample preparation limitations, all of the SMF experiments in live bacteria are performed at steady state such that all components have reached equilibrium. Therefore, this dissertation aims to address this gap in technology and access single-molecule dynamics during real-time changes by implementing two alternative sample preparations: microfluidic devices and chitosan-coated coverslips. Chapter I discusses b...
International audienceWe monitored the dynamics of cell dimensions and reporter GFP expression in in...
Abstract Background Clonal microbial populations often harbor rare phenotypic variants that are typi...
To improve methods to characterize bacteria at the cellular level, we developed a new microfluidic ...
Bacteria rely on protein systems for regulation in response to external environmental signals. Singl...
Intracellular sensing in microorganisms is challenging due to their fast response to environmental c...
Protein organization inside live cells is essential to their life processes. The location of each pr...
Single-molecule fluorescence microscopy enables biological investigations inside living cells to ach...
Bacteria have evolved complex, highly-coordinated, multi-component cellular engines to achieve high ...
<div><p>Bacteria have evolved complex, highly-coordinated, multi-component cellular engines to achie...
Fluorescence microscopy is one of the most extensively used techniques in the life sciences. Conside...
<p><b>A. Micro-fluidic chamber assembly.</b> A a coverslip and a 1-way inlet and single outlet ports...
We designed a microfluidic chemostat consisting of 600 sub-micron trapping/growth channels connected...
We monitored the dynamics of cell dimensions and reporter GFP expression in individual E. coli cells...
In the last two decades emerging single-molecule fluorescence tools have been developed and adapted ...
The importance of individual heterogeneity within a genetically identical population has become well...
International audienceWe monitored the dynamics of cell dimensions and reporter GFP expression in in...
Abstract Background Clonal microbial populations often harbor rare phenotypic variants that are typi...
To improve methods to characterize bacteria at the cellular level, we developed a new microfluidic ...
Bacteria rely on protein systems for regulation in response to external environmental signals. Singl...
Intracellular sensing in microorganisms is challenging due to their fast response to environmental c...
Protein organization inside live cells is essential to their life processes. The location of each pr...
Single-molecule fluorescence microscopy enables biological investigations inside living cells to ach...
Bacteria have evolved complex, highly-coordinated, multi-component cellular engines to achieve high ...
<div><p>Bacteria have evolved complex, highly-coordinated, multi-component cellular engines to achie...
Fluorescence microscopy is one of the most extensively used techniques in the life sciences. Conside...
<p><b>A. Micro-fluidic chamber assembly.</b> A a coverslip and a 1-way inlet and single outlet ports...
We designed a microfluidic chemostat consisting of 600 sub-micron trapping/growth channels connected...
We monitored the dynamics of cell dimensions and reporter GFP expression in individual E. coli cells...
In the last two decades emerging single-molecule fluorescence tools have been developed and adapted ...
The importance of individual heterogeneity within a genetically identical population has become well...
International audienceWe monitored the dynamics of cell dimensions and reporter GFP expression in in...
Abstract Background Clonal microbial populations often harbor rare phenotypic variants that are typi...
To improve methods to characterize bacteria at the cellular level, we developed a new microfluidic ...