Genetic background sets the trajectory of experimental cancer evolution
Abstract
Abstract Human cancers are heterogeneous 1 . Dissecting how germline genetic variation and environmental factors shape tumour evolution using human datasets is limited by inherent diversity in genetic backgrounds 2 and environmental exposures 3–5 . Here, to overcome these limitations, we re-ran early tumour evolution hundreds of times in diverged inbred mouse strains, generating matched histology and whole-genome and transcriptome sequences. The sex, environment and carcinogenic exposures were all controlled, and the study design allowed us to capture genetic variation comparable with that observed across human populations while exploiting the nested hierarchical structure of strain–litter–animal–tumour relationships. Our analyses reveal that epistatic interactions between genetic background and acquired somatic mutations result in population-specific disease progression, including choice of driver mutations, occurrence of whole-genome duplication and subclonal selection dynamics that mirror both cancer susceptibility and tumour growth rate. Even modest genetic divergence, comparable with that found across human ancestry groups, can strikingly alter selection pressures during cancer development to shape both cancer risk and the trajectory of tumour evolution.
Article Details
Authors (33)
Sarah J. Aitken
Frances Connor
Christine Feig
Tim F. Rayner
Margus Lukk
Juliet Luft
Stuart Aitken
Claudia Arnedo-Pac
James F. Hayes
Michael D. Nicholson
Ailith Ewing
Vasavi Sundaram
Jan C. Verburg
John Connelly
Craig J. Anderson
Mikaela Behm
Susan Campbell
Maëlle Daunesse
Vera B. Kaiser
Elissavet Kentepozidou
Oriol Pich
Aisling M. Redmond
Javier Santoyo-Lopez
Inés Sentís
Lana Talmane
Ruben M. Drews
Paul A. Ginno
Erika López-Arribillaga
Paul Flicek
Núria López-Bigas
Colin A. Semple
Martin S. Taylor
Duncan T. Odom