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  • Faculty of Science / Naturvetenskapliga fakulteten
  • Department of Cell and Molecular Biology / Institutionen för cell- och molekylärbiologi (-2011)
  • Doctoral Theses / Doktorsavhandlingar Institutionen för cell- och molekylärbiologi
  • Redigera dokument
  •   Startsida
  • Faculty of Science / Naturvetenskapliga fakulteten
  • Department of Cell and Molecular Biology / Institutionen för cell- och molekylärbiologi (-2011)
  • Doctoral Theses / Doktorsavhandlingar Institutionen för cell- och molekylärbiologi
  • Redigera dokument
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From cell populations to single cells - quantitative analysis of osmotic regulation in yeast

Sammanfattning
To date, interdisciplinary research is becoming increasingly popular because it combines the achievements of diverse disciplines, having the potential of providing a completely new angle to pertinent research problems. Using increasingly sophisticated tools allowed obtaining large sets of high resolution data but also created the challenge of using this information effectively and interpreting it in a reliable way. Searching for “simplicity in complexity” inspired by engineering and computer sciences, is a new trend in biological sciences, which allows integrating the vast amount of existing knowledge. Single cell analysis is a good example of interdisciplinary research: dissecting a cell population to specific individuals is at instances necessary in order to obtain information on heterogeneity and cellular dynamics, which might be obscured when investigating, for instance, protein levels in extracts obtained from cell populations. In this thesis I have presented quantitative and time resolved measurements of cellular and nuclear volume, as well as protein shuttling, enabled by the development of a microscope platform dedicated to this type of measurements. I have investigated the response characteristics of the High Osmolarity Glycerol (HOG) pathway in Saccharomyces cerevisiae as an example of a MAP kinase network, such as the time scale and amplitude of nuclear Hog1 accumulation, correlated with biophysical changes. I have also performed experiments on cell populations, aimed at the quantitative characterisation of the downstream effects of the HOG pathway activity, namely glycerol accumulation. In combination of mathematical modelling employing time varying response coefficients, this information allowed us to characterise the importance of each glycerol accumulation mechanism, on different time scales. In summary, in this thesis I investigated the quantitative aspects of yeast osmotic regulation, providing precise, time resolved information about the biophysical characteristics of osmotic regulation. This work also provides new insight into the network properties of the HOG pathway, indicating the limitations of the response linearity range and the quantitative characterisation of the consequences of HOG activity, namely the interdependence of glycerol accumulation mechanisms. While achieving these goals, I contributed to the development of the single cell analysis platform, dedicated to analysing sub-cellular protein shuttling, correlated with measurements of cellular and nuclear volume.
Delarbeten
PAPER I Biophysical properties of Saccharomyces cerevisiae and their relation to HOG pathway activation European Biophysics Journal Authors: Jörg Schaber, Miquel Àngel Adrover, Emma Eriksson, Serge Pelet, Elzbieta Petelenz-Kurdziel, Dagmara Klein, Francesc Posas, Mattias Goksör, Mathias Peter, Stefan Hohmann, Edda Klipp ::doi::10.1007/s00249-010-0612-0
 
PAPER II Quantification of yeast cell volume changes upon hyper-osmotic stress Manuscript (unpublished) for Integrative Biology Authors: Elzbieta Petelenz-Kurdziel, Emma Eriksson, Maria Smedh, Caroline Beck, Stefan Hohmann, Mattias Goksör
 
PAPER III Linearity range of the hyperosmotic stress response in Saccharomyces cerevisiae Manuscript (unpublished) Authors: Elzbieta Petelenz-Kurdziel, Roja Babazadeh, Caroline Beck, Maria Smedh, Emma Eriksson, Mattias Goksör, Stefan Hohmann
 
PAPER IV Transcriptional initiation in hyperosmotically regulated genes depends on the osmotic volume recovery rate Manuscript (unpublished) Authors: Dagmara Medrala-Klein, Cecilia Geijer, Elzbieta Petelenz-Kurdziel, Abraham Ericsson, Maria Smedh, Marcus Krantz, Mattias Goksör, Bodil Nordlander, Stefan Hohmann
 
PAPER V Exploring the impact of osmoadaptation on glycolysis using time-varying response-coefficients Genome Informatics 2008, 20: 77-90 Authors: Clemens Kuhn, Elzbieta Petelenz, Bodil Nordlander, Jorg Schaber, Stefan Hohmann, Edda Klipp ::PMID::19425124
 
PAPER VI Mechanisms of glycerol accumulation under hyper-osmotic stress and their link to glycolysis Manuscript for Molecular Systems Biology (unpublished) Authors: Elzbieta Petelenz-Kurdziel, Clemens Kuehn, Bodil Nordlander, Dagmara Klein, Kuk-Ki Hong, Therese Jacobson, Peter Dahl, Joerg Schaber, Jens Nielsen, Stefan Hohmann, Edda Klipp
 
Examinationsnivå
Doctor of Philosophy
Universitet
Göteborgs universitet. Naturvetenskapliga fakulteten
Institution
Department of Cell and Molecular Biology ; Institutionen för cell- och molekylärbiologi
Disputation
måndagen den 27 september 2010, kl. 10.00, sal Arvid Carlsson Medicinaregatan 3, Göteborg
Datum för disputation
2010-09-27
E-post
elzbieta.petelenz@cmb.gu.se
URL:
http://hdl.handle.net/2077/23120
Samlingar
  • Doctoral Theses / Doktorsavhandlingar Institutionen för cell- och molekylärbiologi
  • Doctoral Theses from University of Gothenburg / Doktorsavhandlingar från Göteborgs universitet
Fil(er)
Thesis frame (1.123Mb)
spikbladet (42.82Kb)
Datum
2010-09-06
Författare
Petelenz-Kurdziel, Elzbieta
Nyckelord
mikrobiologi
systembiologi
Publikationstyp
Doctoral thesis
ISBN
978-91-628-8156-6
Språk
eng
Metadata
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