Cell volume is a biophysical property, which is of great importance for quantitative characterisations of biological processes, such as osmotic adaptation. It also is a crucial parameter in the most common type of mathematical description of cellular behaviour-ordinary differential equation (ODE) models, e.g. the integrative model of the osmotic stress response in baker\u27s yeast (E. Klipp, B. Nordlander, R. Kruger, P. Gennemark and S. Hohmann, Nat. Biotechnol., 2005, 23, 975-982). Until recently only rough estimates of this value were available. In this study we measured the mean volume of more than 300 individual yeast cells (Saccharomyces cerevisiae). We quantitatively characterised the dependence between the relative cell volume and th...
Integration of experimental studies with mathematical modeling allows insight into systems propertie...
Yeast cells sense and respond to hypertonicity. Saccharomyces cerevisiae MTCC 2918 was tested for it...
The ability to adapt to changing and potentially harmful conditions in the surrounding environment i...
We present a simple ordinary differential equation (ODE) model of the adaptive response to an osmoti...
We present a simple ordinary differential equation (ODE) model of the adaptive response to an osmoti...
International audienceThe passive osmoregulation phase of S. cerevisiae has been characterized for d...
International audienceThis paper reviews the passive mechanisms involved in the response of a yeast ...
Parameterized models of biophysical and mechanical cell properties are important for predictive math...
Parameterized models of biophysical and mechanical cell properties are important for predictive math...
Molecular and physiological details of osmoadaptation in yeast Saccharomyces cerevisiae are well cha...
Cell growth is well described at the population level, but precisely how nutrient and water uptake a...
International audienceApplication of slow and progressive changes in osmotic pressure to cells of S....
Molecular and physiological details of osmoadaptation in yeast Saccharomyces cerevisiae are well cha...
Integration of experimental studies with mathematical modeling allows insight into systems propertie...
International audienceRegulation of the cellular volume is fundamental for cell survival and functio...
Integration of experimental studies with mathematical modeling allows insight into systems propertie...
Yeast cells sense and respond to hypertonicity. Saccharomyces cerevisiae MTCC 2918 was tested for it...
The ability to adapt to changing and potentially harmful conditions in the surrounding environment i...
We present a simple ordinary differential equation (ODE) model of the adaptive response to an osmoti...
We present a simple ordinary differential equation (ODE) model of the adaptive response to an osmoti...
International audienceThe passive osmoregulation phase of S. cerevisiae has been characterized for d...
International audienceThis paper reviews the passive mechanisms involved in the response of a yeast ...
Parameterized models of biophysical and mechanical cell properties are important for predictive math...
Parameterized models of biophysical and mechanical cell properties are important for predictive math...
Molecular and physiological details of osmoadaptation in yeast Saccharomyces cerevisiae are well cha...
Cell growth is well described at the population level, but precisely how nutrient and water uptake a...
International audienceApplication of slow and progressive changes in osmotic pressure to cells of S....
Molecular and physiological details of osmoadaptation in yeast Saccharomyces cerevisiae are well cha...
Integration of experimental studies with mathematical modeling allows insight into systems propertie...
International audienceRegulation of the cellular volume is fundamental for cell survival and functio...
Integration of experimental studies with mathematical modeling allows insight into systems propertie...
Yeast cells sense and respond to hypertonicity. Saccharomyces cerevisiae MTCC 2918 was tested for it...
The ability to adapt to changing and potentially harmful conditions in the surrounding environment i...