LuoRudySpiralWaveCellFactory.hpp

00001 /*
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00035 
00036 #ifndef LUORUDYSPIRALWAVECELLFACTORY_HPP_
00037 #define LUORUDYSPIRALWAVECELLFACTORY_HPP_
00038 
00039 #include "LuoRudy1991BackwardEuler.hpp"
00040 #include "AbstractCardiacCellFactory.hpp"
00041 #include "MultiStimulus.hpp"
00042 
00048 class LuoRudySpiralWaveCellFactory : public AbstractCardiacCellFactory<2>
00049 {
00050 private:
00052     boost::shared_ptr<SimpleStimulus> mpS1Stimulus;
00054     boost::shared_ptr<SimpleStimulus> mpS2Stimulus;
00056     boost::shared_ptr<MultiStimulus> mpBothStimulus;
00058     double mXExtent;
00060     double mYExtent;
00061 public:
00068     LuoRudySpiralWaveCellFactory(double xExtent, double yExtent)
00069         : AbstractCardiacCellFactory<2>(),
00070           mpS1Stimulus(new SimpleStimulus(-50000.0, 2, 0)),
00071           mpS2Stimulus(new SimpleStimulus(-70000.0, 2, 45)),
00072           mpBothStimulus(new MultiStimulus()),
00073           mXExtent(xExtent),
00074           mYExtent(yExtent)
00075     {
00076         mpBothStimulus->AddStimulus(mpS1Stimulus);
00077         mpBothStimulus->AddStimulus(mpS2Stimulus);
00078     }
00079 
00089     AbstractCardiacCell* CreateCardiacCellForTissueNode(Node<2>* pNode)
00090     {
00091         double x = pNode->rGetLocation()[0];
00092         double y = pNode->rGetLocation()[1];
00093 
00094         double x_threshold_for_S1 = 0.1 + 1e-6;
00095         double x_threshold_for_S2 = mXExtent*0.6;
00096         double y_threshold_for_S2 = mYExtent*0.5;
00097 
00098         AbstractCardiacCell* p_cell;
00099         if ( x < x_threshold_for_S1 )
00100         {
00101             if (y<y_threshold_for_S2)
00102             {
00103                 p_cell = new CellLuoRudy1991FromCellMLBackwardEuler(mpSolver, mpBothStimulus);
00104             }
00105             else
00106             {
00107                 p_cell = new CellLuoRudy1991FromCellMLBackwardEuler(mpSolver, mpS1Stimulus);
00108             }
00109         }
00110         else if ( (x < x_threshold_for_S2) && (y < y_threshold_for_S2) )
00111         {
00112             p_cell = new CellLuoRudy1991FromCellMLBackwardEuler(mpSolver, mpS2Stimulus);
00113         }
00114         else
00115         {
00116             p_cell = new CellLuoRudy1991FromCellMLBackwardEuler(mpSolver, this->mpZeroStimulus);
00117         }
00118 
00119         // Alter parameters to match those used in
00120         // Qu et al. Origins of Spiral Wave Meander and Breakup... Annals of Biomedical Eng. 28:755-771 (2000).
00121         p_cell->SetParameter("membrane_L_type_calcium_current_conductance",0); // slow inward current in original model.
00122 
00123         unsigned node_index = pNode->GetIndex();
00124         if (node_index==0)
00125         {
00126 //            std::cout << "[K_o] = " << p_cell->GetAnyVariable("extracellular_potassium_concentration") << "mM \n";
00127 //            std::cout << "[K_i] = " << p_cell->GetAnyVariable("cytosolic_potassium_concentration") << "mM \n";
00128 //            std::cout << "[Na_o] = " << p_cell->GetAnyVariable("extracellular_sodium_concentration") << "mM \n";
00129 //            std::cout << "[Na_i] = " << p_cell->GetAnyVariable("cytosolic_sodium_concentration") << "mM \n";
00130             std::cout << "G_si = " << p_cell->GetAnyVariable("membrane_L_type_calcium_current_conductance") << "\n";
00131 //            std::cout << "G_Na = " << p_cell->GetAnyVariable("membrane_fast_sodium_current_conductance") << "mM \n";
00132 //            std::cout << "G_K = " << p_cell->GetAnyVariable("membrane_rapid_delayed_rectifier_potassium_current_conductance") << "mM \n";
00133 //            std::cout << "G_K1 = " << p_cell->GetAnyVariable("membrane_inward_rectifier_potassium_current_conductance") << "mM \n";
00134         }
00135         return p_cell;
00136     }
00137 };
00138 
00139 #endif // LUORUDYSPIRALWAVECELLFACTORY_HPP_

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