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Multi-scale Modeling in Clinical Oncology: Opportunities and Barriers to Success

  • Thomas E. Yankeelov
  • , Gary An
  • , Oliver Saut
  • , E. Georg Luebeck
  • , Aleksander S. Popel
  • , Benjamin Ribba
  • , Paolo Vicini
  • , Xiaobo Zhou
  • , Jared A. Weis
  • , Kaiming Ye
  • , Guy M. Genin
  • University of Texas at Austin
  • The University of Chicago
  • Université de Bordeaux
  • Fred Hutchinson Cancer Research Center
  • Johns Hopkins University
  • F. Hoffmann-La Roche AG
  • MedImmune, Inc.
  • Wake Forest University
  • Vanderbilt University
  • State University of New York Binghamton University
  • Washington University St. Louis

科研成果: 期刊稿件文章同行评审

65 引用 (Scopus)

摘要

Hierarchical processes spanning several orders of magnitude of both space and time underlie nearly all cancers. Multi-scale statistical, mathematical, and computational modeling methods are central to designing, implementing and assessing treatment strategies that account for these hierarchies. The basic science underlying these modeling efforts is maturing into a new discipline that is close to influencing and facilitating clinical successes. The purpose of this review is to capture the state-of-the-art as well as the key barriers to success for multi-scale modeling in clinical oncology. We begin with a summary of the long-envisioned promise of multi-scale modeling in clinical oncology, including the synthesis of disparate data types into models that reveal underlying mechanisms and allow for experimental testing of hypotheses. We then evaluate the mathematical techniques employed most widely and present several examples illustrating their application as well as the current gap between pre-clinical and clinical applications. We conclude with a discussion of what we view to be the key challenges and opportunities for multi-scale modeling in clinical oncology.

源语言英语
页(从-至)2626-2641
页数16
期刊Annals of Biomedical Engineering
44
9
DOI
出版状态已出版 - 1 9月 2016
已对外发布

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