Literature DB >> 22975007

Cancer in light of experimental evolution.

Kathleen Sprouffske1, Lauren M F Merlo, Philip J Gerrish, Carlo C Maley, Paul D Sniegowski.   

Abstract

Cancer initiation, progression, and the emergence of therapeutic resistance are evolutionary phenomena of clonal somatic cell populations. Studies in microbial experimental evolution and the theoretical work inspired by such studies are yielding deep insights into the evolutionary dynamics of clonal populations, yet there has been little explicit consideration of the relevance of this rapidly growing field to cancer biology. Here, we examine how the understanding of mutation, selection, and spatial structure in clonal populations that is emerging from experimental evolution may be applicable to cancer. Along the way, we discuss some significant ways in which cancer differs from the model systems used in experimental evolution. Despite these differences, we argue that enhanced prediction and control of cancer may be possible using ideas developed in the context of experimental evolution, and we point out some prospects for future research at the interface between these traditionally separate areas.
Copyright © 2012 Elsevier Ltd. All rights reserved.

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Year:  2012        PMID: 22975007      PMCID: PMC3457634          DOI: 10.1016/j.cub.2012.06.065

Source DB:  PubMed          Journal:  Curr Biol        ISSN: 0960-9822            Impact factor:   10.834


  152 in total

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2.  The fixation probability of rare mutators in finite asexual populations.

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4.  Repeated evolution of an acetate-crossfeeding polymorphism in long-term populations of Escherichia coli.

Authors:  D S Treves; S Manning; J Adams
Journal:  Mol Biol Evol       Date:  1998-07       Impact factor: 16.240

5.  Virus dynamics and drug therapy.

Authors:  S Bonhoeffer; R M May; G M Shaw; M A Nowak
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6.  Spatial structure increases the waiting time for cancer.

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7.  The accumulation of deleterious genes in a population--Muller's Ratchet.

Authors:  J Haigh
Journal:  Theor Popul Biol       Date:  1978-10       Impact factor: 1.570

8.  The hypercycle. A principle of natural self-organization. Part A: Emergence of the hypercycle.

Authors:  M Eigen; P Schuster
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Authors:  Erin D Pleasance; R Keira Cheetham; Philip J Stephens; David J McBride; Sean J Humphray; Chris D Greenman; Ignacio Varela; Meng-Lay Lin; Gonzalo R Ordóñez; Graham R Bignell; Kai Ye; Julie Alipaz; Markus J Bauer; David Beare; Adam Butler; Richard J Carter; Lina Chen; Anthony J Cox; Sarah Edkins; Paula I Kokko-Gonzales; Niall A Gormley; Russell J Grocock; Christian D Haudenschild; Matthew M Hims; Terena James; Mingming Jia; Zoya Kingsbury; Catherine Leroy; John Marshall; Andrew Menzies; Laura J Mudie; Zemin Ning; Tom Royce; Ole B Schulz-Trieglaff; Anastassia Spiridou; Lucy A Stebbings; Lukasz Szajkowski; Jon Teague; David Williamson; Lynda Chin; Mark T Ross; Peter J Campbell; David R Bentley; P Andrew Futreal; Michael R Stratton
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  39 in total

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3.  Clonal evolution and genome stability in a 2500-year-old fungal individual.

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Review 4.  Experimental Design, Population Dynamics, and Diversity in Microbial Experimental Evolution.

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5.  The effect of population bottlenecks on mutation rate evolution in asexual populations.

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6.  Modeling the Subclonal Evolution of Cancer Cell Populations.

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7.  Spatial Moran models, II: cancer initiation in spatially structured tissue.

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Review 8.  Genome dynamics during experimental evolution.

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Review 9.  Cancer heterogeneity: implications for targeted therapeutics.

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