Cancer Evolution: Mathematical Models and Computational Inference

被引:228
作者
Beerenwinkel, Niko [1 ,2 ]
Schwarz, Roland F. [3 ]
Gerstung, Moritz [4 ]
Markowetz, Florian [5 ]
机构
[1] Swiss Fed Inst Technol, Dept Biosyst Sci & Engn, CH-4058 Basel, Switzerland
[2] SIB, CH-4058 Basel, Switzerland
[3] European Bioinformat Inst, European Mol Biol Lab, Hinxton CB10 1SA, Cambs, England
[4] Wellcome Trust Sanger Inst, Hinxton CB10 1SA, Cambs, England
[5] Univ Cambridge, Canc Res UK Cambridge Inst, Cambridge CB20RE, England
基金
欧洲研究理事会;
关键词
Cancer; cancer progression; evolution; population genetics; probabilistic graphical models; INTRA-TUMOR HETEROGENEITY; SPATIAL STOCHASTIC-MODELS; CLONAL EVOLUTION; SOMATIC MUTATIONS; WAITING TIME; TREE MODELS; GENETIC INSTABILITY; PASSENGER MUTATIONS; ONCOGENETIC TREE; DRUG-RESISTANCE;
D O I
10.1093/sysbio/syu081
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Cancer is a somatic evolutionary process characterized by the accumulation of mutations, which contribute to tumor growth, clinical progression, immune escape, and drug resistance development. Evolutionary theory can be used to analyze the dynamics of tumor cell populations and to make inference about the evolutionary history of a tumor from molecular data. We review recent approaches to modeling the evolution of cancer, including population dynamics models of tumor initiation and progression, phylogenetic methods to model the evolutionary relationship between tumor subclones, and probabilistic graphical models to describe dependencies among mutations. Evolutionary modeling helps to understand how tumors arise and will also play an increasingly important prognostic role in predicting disease progression and the outcome of medical interventions, such as targeted therapy.
引用
收藏
页码:E1 / E25
页数:25
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