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Inference of Tumor Evolution during Chemotherapy by Computational Modeling and In Situ Analysis of Genetic and Phenotypic Cellular Diversity

Translated title of the contribution: Inference of Tumor Evolution during Chemotherapy by Computational Modeling and In Situ Analysis of Genetic and Phenotypic Cellular Diversity
  • V. Almendro
  • , Y.K. Cheng
  • , A. Randles
  • , S. Itzkovitz
  • , A. Marusyk
  • , E. Ametller
  • , X. Gonzalez-Farre
  • , M. Munoz
  • , H.G. Russnes
  • , A. Helland
  • , I.H. Rye
  • , A.L. Borresen-Dale
  • , R. Maruyama
  • , A. van Oudenaarden
  • , M. Dowsett
  • , R.L.. Jones
  • , J. Reis-Filho
  • , P. Gascon
  • , M. Goenen
  • , F. Michor
  • K. Polyak

Research output: Contribution to journalArticleAcademicpeer-review

Abstract

Cancer therapy exerts a strong selection pressure that shapes tumor evolution, yet our knowledge of how tumors change during treatment is limited. Here, we report the analysis of cellular heterogeneity for genetic and phenotypic features and their spatial distribution in breast tumors pre- and post-neoadjuvant chemotherapy. We found that intratumor genetic diversity was tumor-subtype specific, and it did not change during treatment in tumors with partial or no response. However, lower pretreatment genetic diversity was significantly associated with pathologic complete response. In contrast, phenotypic diversity was different between pre- and post-treatment samples. We also observed significant changes in the spatial distribution of cells with distinct genetic and phenotypic features. We used these experimental data to develop a stochastic computational model to infer tumor growth patterns and evolutionary dynamics. Our results highlight the importance of integrated analysis of genotypes and phenotypes of single cells in intact tissues to predict tumor evolution
Translated title of the contributionInference of Tumor Evolution during Chemotherapy by Computational Modeling and In Situ Analysis of Genetic and Phenotypic Cellular Diversity
Original languageUndefined/Unknown
Pages (from-to)514-527
Number of pages14
JournalCell Reports [E]
Volume6
Issue number3
Publication statusPublished - 2014

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