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Modeling Tumor Vasculature

Molecular, Cellular, and Tissue Level Aspects and Implications

  • Provides a variety of interesting and innovative mathematical modeling approaches

  • Discusses the development and effects of tumor vasculature using mathematical models

  • Illustrates the innovation and new trend of mathematical models in cancer research

  • Includes supplementary material: sn.pub/extras

  • 12k Accesses

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Table of contents (14 chapters)

  1. Front Matter

    Pages i-xi
  2. Cell Signaling and Molecular Aspects of Tumor Blood Vessel Formation

    1. Front Matter

      Pages 1-1
    2. Mathematical Modeling of the VEGF Receptor

      • Tomás Alarcón, Karen M. Page
      Pages 3-35
    3. Simulating Therapeutics Using Multiscale Models of the VEGF Receptor System in Cancer

      • Feilim Mac Gabhann, Marianne O. Stefanini, Aleksander S. Popel
      Pages 37-53
  3. Angiogenesis

    1. Front Matter

      Pages 103-103
    2. A Hybrid Discrete-Continuum Model of Tumour Induced Angiogenesis

      • Alexander R. A. Anderson, Mark A. J. Chaplain, Stephen McDougall
      Pages 105-133
    3. Cell-Based Models of Tumor Angiogenesis

      • Yi Jiang, Amy L. Bauer, Trachette L. Jackson
      Pages 135-150
    4. Blood Flow and Tumour-Induced Angiogenesis: Dynamically Adapting Vascular Networks

      • Mark A. J. Chaplain, Steven R. McDougall, Alexander R. A. Anderson
      Pages 167-212
    5. Modeling Structural and Functional Adaptation of Tumor Vessel Networks During Antiangiogenic Therapy

      • Lance L. Munn, Walid Kamoun, Michael Dupin, James Alex Tyrrell
      Pages 213-233
  4. Whole Organ Modeling of Tumor Growth and Vasculature

    1. Front Matter

      Pages 235-235
    2. Effect of Vascularization on Glioma Tumor Growth

      • Haralambos Hatzikirou, Arnaud Chauvière, John Lowengrub, J. De Groot, Vittorio Cristini
      Pages 237-259
    3. Particle Simulations of Growth: Application to Tumorigenesis

      • Michael Bergdorf, Florian Milde, Petros Koumoutsakos
      Pages 261-303
    4. Particle Simulations of Growth: Application to Angiogenesis

      • Florian Milde, Michael Bergdorf, Petros Koumoutsakos
      Pages 305-334
    5. Blood Vessel Network Remodeling During Tumor Growth

      • Michael Welter, Heiko Rieger
      Pages 335-360
    6. Blood Perfusion in Solid Tumor with “Normalized” Microvasculature

      • Jie Wu, Quan Long, Shi-xiong Xu
      Pages 361-398
  5. Back Matter

    Pages 399-409

About this book

To profoundly understand biology and harness its intricacies for human benefit and the mitigation of human harm requires cross-disciplinary approaches that incorporate sophisticated computational and mathematical modeling techniques. These integrative strategies are essential to achieve rapid and significant progress in issues, in health and disease, which span molecular, cellular and tissue levels. The use of mathematical models to describe various aspects of tumor growth has a very long history, dating back over six decades.  Recently, however, experimental and computational advances have improved our in the understanding of how processes act at multiple scales to mediate the development of tumor vasculature and drive the advancement of cancer. This book will showcase the development and utilization of new computational and mathematical approaches to address multiscale challenges associated with tumor vascular development. 

 

In Part I:  Cell Signaling and Molecular Aspects of Tumor Blood Vessel Formation, it will be come clear that mathematical modeling can help to biochemically and biomechanically phenotype one of the most important cell types involved in cancer progression:  vascular endothelial cells. When subverted by the tumor modulated environment, vascular endothelial cells form a new vascular supply capable of nourishing and translocating cancer cells to other tissues.  The models in Part I illustrate the importance of quantitative approaches for gaining a deeper understanding of how normal and abnormal aspects of signal integration culminate in the cell proliferation, migration, and survival decisions that result in pathological tumor angiogenesis. 

 

The focus of Part II is the angiogenesis cascade and all of its complexities.   Successful angiogenesis is mediated by the intricate interplay between biochemical and biomechanical mechanisms, including cell-cell and cell-matrix interactions, cell surface receptor binding, and intracellular signal transduction.  A major challenge facing the cancer research community is to integrate known information in a way that improves our understanding of the principal underpinnings driving tumor angiogenesis and that will advance efforts aimed at the development of new therapies for treating cancer.  The chapters in Part II will highlight several mathematical and computational approaches for that can potentially address this challenge.

 

While the first two thirds of the book’s chapters demonstrate how important insights can be gained by studying cell signaling and vascular morphology and function, the series of chapters in Part III: Whole Organ Modeling of Tumor Growth and Vasculature, will integrate vasculature development with tumor growth dynamics. These two processes strongly depend on one another in ways that can only be theoretically investigated by biophysical approaches that cut across several levels of biological organization and describe both the tumor and the developing vasculature as they co-evolve.  

 

The purpose of this edited volume is not to provide a comprehensive review of all modeling efforts that address tumor vascular modeling; instead, a variety of interesting and innovative mathematical modeling approaches for understanding the development and effects of tumor vasculature are highlighted in order to illustrate some of the emerging trends in the field. 

Editors and Affiliations

  • Dept. Mathematics, University of Michigan, Ann Arbor, USA

    Trachette L. L. Jackson

Bibliographic Information

  • Book Title: Modeling Tumor Vasculature

  • Book Subtitle: Molecular, Cellular, and Tissue Level Aspects and Implications

  • Editors: Trachette L. L. Jackson

  • DOI: https://doi.org/10.1007/978-1-4614-0052-3

  • Publisher: Springer New York, NY

  • eBook Packages: Biomedical and Life Sciences, Biomedical and Life Sciences (R0)

  • Copyright Information: Springer Science+Business Media, LLC 2012

  • Hardcover ISBN: 978-1-4614-0051-6Published: 22 November 2011

  • Softcover ISBN: 978-1-4939-0133-3Published: 27 January 2014

  • eBook ISBN: 978-1-4614-0052-3Published: 23 November 2011

  • Edition Number: 1

  • Number of Pages: XII, 412

  • Topics: Cancer Research, Pharmacology/Toxicology

Buy it now

Buying options

eBook USD 129.00
Price excludes VAT (USA)
  • Available as EPUB and PDF
  • Read on any device
  • Instant download
  • Own it forever
Softcover Book USD 169.99
Price excludes VAT (USA)
  • Compact, lightweight edition
  • Dispatched in 3 to 5 business days
  • Free shipping worldwide - see info
Hardcover Book USD 169.99
Price excludes VAT (USA)
  • Durable hardcover edition
  • Dispatched in 3 to 5 business days
  • Free shipping worldwide - see info

Tax calculation will be finalised at checkout

Other ways to access