Team:TU-Eindhoven/LEC/Modelling

From 2012.igem.org

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Global introduction
Global introduction
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Biological cells use highly regulated homeostasis systems 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 50-200nM in the presence of environmental Ca<sup>2+</sup> concentrations ranging from &micro;M to 100mM <html><a href="#ref_miseta" name="text_miseta"><sup>[1]</sup></a></html>.  
Biological cells use highly regulated homeostasis systems 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 50-200nM in the presence of environmental Ca<sup>2+</sup> concentrations ranging from &micro;M to 100mM <html><a href="#ref_miseta" name="text_miseta"><sup>[1]</sup></a></html>.  
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To achieve an accurate model, the influences of voltage-dependent calcium channels are added to a basic model for yeast calcium homeostasis. In this model, first described by J. Cui <i>et al</i>, the main contributions of calcium transport are defined <html><a href="#ref_cui" name="text_cui"><sup>[2]</sup></a></html>. In literature, little can be found about modeling calcium channels in Saccaromyces Cerevisiae, most commonly known as budding yeast. Therefore we still used the model of  sympathetic ganglion `B' type cells of a bullfrog to describe this process, since the type of voltage-dependent calcium channels is the same in both the bullfrog cells and the yeast cells.  
To achieve an accurate model, the influences of voltage-dependent calcium channels are added to a basic model for yeast calcium homeostasis. In this model, first described by J. Cui <i>et al</i>, the main contributions of calcium transport are defined <html><a href="#ref_cui" name="text_cui"><sup>[2]</sup></a></html>. In literature, little can be found about modeling calcium channels in Saccaromyces Cerevisiae, most commonly known as budding yeast. Therefore we still used the model of  sympathetic ganglion `B' type cells of a bullfrog to describe this process, since the type of voltage-dependent calcium channels is the same in both the bullfrog cells and the yeast cells.  
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<b>[fig1.pgn] Figure with basic model || basic model + calcium channels || basic model ++ next to each other, to provide some insight in the cell dynamics</b>
<b>[fig1.pgn] Figure with basic model || basic model + calcium channels || basic model ++ next to each other, to provide some insight in the cell dynamics</b>
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<i>In short, we formulated a new basic calcium model for yeast cells. This model is extended with overexpression of voltage-dependent calcium channels and addition of GECO-kinetics. The model is made in MATLAB and the code can be found here.</i>
<i>In short, we formulated a new basic calcium model for yeast cells. This model is extended with overexpression of voltage-dependent calcium channels and addition of GECO-kinetics. The model is made in MATLAB and the code can be found here.</i>
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In more detail
In more detail
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Since we do not want to bother the semi-interested readers with the complete derivation of the differential equations describing this model, this can be found in the bachelor thesis  of one of our team members, Petra Alkema. In order to understand the results, discussion and conclusion in more detail, we really recommend to study this chapter. In an addition, a more detailed introduction to the conformational switch model, part of the total model, can be found here.  
Since we do not want to bother the semi-interested readers with the complete derivation of the differential equations describing this model, this can be found in the bachelor thesis  of one of our team members, Petra Alkema. In order to understand the results, discussion and conclusion in more detail, we really recommend to study this chapter. In an addition, a more detailed introduction to the conformational switch model, part of the total model, can be found here.  
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The main differential equations are:
The main differential equations are:
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Results
Results
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To simulate the model, realistic parameter values should be implemented. The parameters described by J. Cui et al in their model for yeast calcium homeostasis are well thought-out and mostly justified by different sources. Since the model of the voltage-dependent calcium channels is a model of sympathetic ganglion `B' type cells of a bullfrog as described in Methods in Neuronal Modeling: From Synapses to Networks \cite{Methods in neuronal modeling, all relevant parameter values are taken from this book of reference. In order to fit into the basic model, the units of these parameters were adjusted. In table X, the initial values are shown. At the end of this page?, the model parameters for which all results are calculated, unless otherwise stated, are shown.
To simulate the model, realistic parameter values should be implemented. The parameters described by J. Cui et al in their model for yeast calcium homeostasis are well thought-out and mostly justified by different sources. Since the model of the voltage-dependent calcium channels is a model of sympathetic ganglion `B' type cells of a bullfrog as described in Methods in Neuronal Modeling: From Synapses to Networks \cite{Methods in neuronal modeling, all relevant parameter values are taken from this book of reference. In order to fit into the basic model, the units of these parameters were adjusted. In table X, the initial values are shown. At the end of this page?, the model parameters for which all results are calculated, unless otherwise stated, are shown.

Revision as of 16:44, 24 September 2012