Team:TU-Eindhoven/Modeling

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Biological cells use <span class = "lightblue">highly regulated homeostasis systems</span> to keep a very low cytosolic Ca<sup>2+</sup> level. In normal-growing yeast the cytosolic Ca<sup>2+</sup> concentration is maintained in the range of 50-200 nM in the presence of environmental Ca<sup>2+</sup> concentrations ranging from &micro;M to 100 mM<html><a href="#ref_miseta" name="text_miseta"><sup>[1]</sup></a></html>.
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Biological cells use <span class = "lightblue">highly regulated homeostasis systems</span> to keep a very low cytosolic Ca<sup>2+</sup> level. In normal-growing yeast the cytosolic Ca<sup>2+</sup> concentration is maintained in the range of 50-200 nM in the presence of environmental Ca<sup>2+</sup> concentrations ranging from 1 &micro;M to 100 mM<html><a href="#ref_miseta" name="text_miseta"><sup>[1]</sup></a></html>.
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<li><a href="#text_miseta" name="ref_miseta">[1]</a> A. Miseta, L. Fu, R. Kellermayer, J. Buckley, D.M. Bedwell, “The Golgi Apparatus plays a significant role in the maintainance of Ca2+ homeostasis in the vps33 vacuolar biogenesis mutant of Saccharomyces cerevisiae”, J. Biol. Chem. 274: 5939-5947, (1999)</li>
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<li><a href="#text_miseta" name="ref_miseta">[1]</a> A. Miseta, L. Fu, R. Kellermayer, J. Buckley, D. Bedwell, The Golgi Apparatus plays a significant role in the maintainance of Ca2+ homeostasis in the vps33 vacuolar biogenesis mutant of Saccharomyces cerevisiae, J. Biol. Chem. 274: 5939-5947, (1999)</li>
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<li><a href="#text_kitano" name="ref_kitano">[2]</a> H. Kitano, Systems biology : a brief overview, Nature 295: 1662-1664, (2002)</li>
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<li><a href="#text_kitano" name="ref_kitano">[2]</a> H. Kitano, Systems biology: a brief overview, Nature 295: 1662-1664, (2002)</li>
<li><a href="#text_cui" name="ref_cui">[3]</a> J. Cui, Mathematical modeling of metal ion homeostasis and signaling systems, (2009)</li>
<li><a href="#text_cui" name="ref_cui">[3]</a> J. Cui, Mathematical modeling of metal ion homeostasis and signaling systems, (2009)</li>
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<li><a href="#text_switch" name="ref_switch">[4]</a> H. Okamura, J. Aramburu, C. Garca-Rodrguez, et al. Concerted dephosphorylation of the transcription factor NFAT1 induces a conformational switch that regulates transcriptional activity,
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<li><a href="#text_switch" name="ref_switch">[4]</a> H. Okamura, J. Aramburu, C. Garca-Rodrguez, et al., Concerted dephosphorylation of the transcription factor NFAT1 induces a conformational switch that regulates transcriptional activity,
Mol. Cell 6: 539-550, (2000)</li>
Mol. Cell 6: 539-550, (2000)</li>
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Latest revision as of 01:34, 27 September 2012