Part I Towards a Comprehensive Theory of Cancer Growth |
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Combining Game Theory and Graph Theory to Model Interactions between Cells in the Tumor Microenvironment |
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Growth as the Root of all Evil in Carcinomas: Synergy between pH Buffering and Anti-Angiogenesis prevents Emergence of Hallmarks of Cancer |
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Phase Transitions in Cancer |
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Part II Cancer Related Signalling Pathways |
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Spatio-Temporal Modelling of Intracellular Signalling Pathways: Transcription Factors, Negative Feedback Systems and Oscillations |
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Understanding Cell Fate Decisions by Identifying Crucial System Dynamics |
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Modelling Biochemical Pathways with the Calculus of Looping Sequences |
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Dynamic Simulations of Pathways Downstream of TGFβ, Wnt and EGF-Family Growth Factors, in Colorectal Cancer, including Mutations and Treatments with Onco-Protein Inhibitors |
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Part III Basic Mechanisms of Tumor Progression |
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Some Results on the Population Behavior of Cancer Stem Cells |
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Glucose Metabolism in Multicellular Spheroids, ATP Production and Effects of Acidity |
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Cell-Cell Interactions in Solid Tumors - the Role of Cancer Stem Cells |
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Hybrid Cellular Potts Model for Solid Tumor Growth |
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Part IV Tumor-Immune System Interplay and Immunotherapy |
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Computational Models as Novel Tools for Cancer Vaccines |
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On the Dynamics of Tumor-Immune System Interactions and Combined Chemo- and Immunotherapy |
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Modeling the Kinetics of the Immune Response |
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Part V Computational Method for Improving Chemotherapy.- Optimizing Cancer Chemotherapy: from Mathematical Theories to Clinical Treatment |
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A Systems Biomedicine Approach for Chronotherapeutics Optimization: Focus on the Anticancer Drug Irinotecan |
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Modeling the Dynamics of HCV Infected Cells to Tailor Antiviral Therapy in Clinical Practice: Can This Approach Fit for Neoplastic Cells? |
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Introducing Drug Transport Early in the Design of Hypoxia Selective Anticancer Agents Using a Mathematical Modelling Approach |
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Top-Down Multiscale Simulation of Tumor Response to Treatment in the Context of In Silico Oncology. The Notion of Oncosimulator |
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Challenges in the Integration of Flow Cytometry and Time-Lapse Live Cell Imaging Data Using a Cell Proliferation Model |
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Part I Towards a Comprehensive Theory of Cancer Growth |
|
Combining Game Theory and Graph Theory to Model Interactions between Cells in the Tumor Microenvironment |
|
Growth as the Root of all Evil in Carcinomas: Synergy between pH Buffering and Anti-Angiogenesis prevents Emergence of Hallmarks of Cancer |
|
Phase Transitions in Cancer |
|
Part II Cancer Related Signalling Pathways |
|
Spatio-Temporal Modelling of Intracellular Signalling Pathways: Transcription Factors, Negative Feedback Systems and Oscillations |
|