Metabolic heterogeneity between individual cells of a population harbors significant challenges for fundamental and applied research. Identifying metabolic heterogeneity and investigating its emergence require tools to zoom into metabolism of individual cells. While methods exist to measure metabolite levels in single cells, we lack capability to measure metabolic flux, i.e., the ultimate functional output of metabolic activity, on the single-cell level. Here, combining promoter engineering, computational protein design, biochemical methods, proteomics, and metabolomics, we developed a biosensor to measure glycolytic flux in single yeast cells. Therefore, drawing on the robust cell-intrinsic correlation between glycolytic flux and levels of...
No two living cells are exactly the same. Even cells from a clonal population with identical genomes...
A reporter system was constructed to measure perturbations in the NADH/NAD(+) co-factor balance in y...
The large size of metabolic networks entails an overwhelming multiplicity in the possible steady-sta...
Metabolic heterogeneity between individual cells of a population harbors significant challenges for ...
RNA-based sensors for intracellular metabolites are a promising solution to the emerging issue of me...
RNA-based sensors for intracellular metabolites are a promising solution to the emerging issue of me...
Single-cell level measurements are necessary to characterize the intrinsic biological variability in...
Using protein counts sampled from single cell proteomics distributions to constrain fluxes through a...
In this unit, we provide a clear exposition of the methodology employed to study dynamic responses i...
Our lab has recently discovered metabolic oscillations in single cells of baker’s yeast, where cruci...
Adenosine 5-triphosphate (ATP) is the main free energy carrier in metabolism. In budding yeast, shif...
The cAMP-PKA signaling cascade in budding yeast regulates adaptation to changing environments. We de...
Motorized fluorescence microscopy combined with high-throughput microfluidic chips is a powerful met...
The cAMP-PKA signalling cascade in budding yeast regulates adaptation to changing environments. We d...
During continuous growth in specific chemostat cultures, budding yeast undergo robust oscillations i...
No two living cells are exactly the same. Even cells from a clonal population with identical genomes...
A reporter system was constructed to measure perturbations in the NADH/NAD(+) co-factor balance in y...
The large size of metabolic networks entails an overwhelming multiplicity in the possible steady-sta...
Metabolic heterogeneity between individual cells of a population harbors significant challenges for ...
RNA-based sensors for intracellular metabolites are a promising solution to the emerging issue of me...
RNA-based sensors for intracellular metabolites are a promising solution to the emerging issue of me...
Single-cell level measurements are necessary to characterize the intrinsic biological variability in...
Using protein counts sampled from single cell proteomics distributions to constrain fluxes through a...
In this unit, we provide a clear exposition of the methodology employed to study dynamic responses i...
Our lab has recently discovered metabolic oscillations in single cells of baker’s yeast, where cruci...
Adenosine 5-triphosphate (ATP) is the main free energy carrier in metabolism. In budding yeast, shif...
The cAMP-PKA signaling cascade in budding yeast regulates adaptation to changing environments. We de...
Motorized fluorescence microscopy combined with high-throughput microfluidic chips is a powerful met...
The cAMP-PKA signalling cascade in budding yeast regulates adaptation to changing environments. We d...
During continuous growth in specific chemostat cultures, budding yeast undergo robust oscillations i...
No two living cells are exactly the same. Even cells from a clonal population with identical genomes...
A reporter system was constructed to measure perturbations in the NADH/NAD(+) co-factor balance in y...
The large size of metabolic networks entails an overwhelming multiplicity in the possible steady-sta...