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Genetic subclone architecture of tumor clone-initiating cells in colorectal cancer

A hierarchically organized cell compartment drives colorectal cancer (CRC) progression. Genetic barcoding allows monitoring of the clonal output of tumorigenic cells without prospective isolation. In this study, we asked whether tumor clone-initiating cells (TcICs) were genetically heterogeneous and...

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Autores principales: Giessler, Klara M., Kleinheinz, Kortine, Huebschmann, Daniel, Balasubramanian, Gnana Prakash, Dubash, Taronish D., Dieter, Sebastian M., Siegl, Christine, Herbst, Friederike, Weber, Sarah, Hoffmann, Christopher M., Fronza, Raffaele, Buchhalter, Ivo, Paramasivam, Nagarajan, Eils, Roland, Schmidt, Manfred, von Kalle, Christof, Schneider, Martin, Ulrich, Alexis, Scholl, Claudia, Fröhling, Stefan, Weichert, Wilko, Brors, Benedikt, Schlesner, Matthias, Ball, Claudia R., Glimm, Hanno
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Rockefeller University Press 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5502434/
https://www.ncbi.nlm.nih.gov/pubmed/28572216
http://dx.doi.org/10.1084/jem.20162017
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author Giessler, Klara M.
Kleinheinz, Kortine
Huebschmann, Daniel
Balasubramanian, Gnana Prakash
Dubash, Taronish D.
Dieter, Sebastian M.
Siegl, Christine
Herbst, Friederike
Weber, Sarah
Hoffmann, Christopher M.
Fronza, Raffaele
Buchhalter, Ivo
Paramasivam, Nagarajan
Eils, Roland
Schmidt, Manfred
von Kalle, Christof
Schneider, Martin
Ulrich, Alexis
Scholl, Claudia
Fröhling, Stefan
Weichert, Wilko
Brors, Benedikt
Schlesner, Matthias
Ball, Claudia R.
Glimm, Hanno
author_facet Giessler, Klara M.
Kleinheinz, Kortine
Huebschmann, Daniel
Balasubramanian, Gnana Prakash
Dubash, Taronish D.
Dieter, Sebastian M.
Siegl, Christine
Herbst, Friederike
Weber, Sarah
Hoffmann, Christopher M.
Fronza, Raffaele
Buchhalter, Ivo
Paramasivam, Nagarajan
Eils, Roland
Schmidt, Manfred
von Kalle, Christof
Schneider, Martin
Ulrich, Alexis
Scholl, Claudia
Fröhling, Stefan
Weichert, Wilko
Brors, Benedikt
Schlesner, Matthias
Ball, Claudia R.
Glimm, Hanno
author_sort Giessler, Klara M.
collection PubMed
description A hierarchically organized cell compartment drives colorectal cancer (CRC) progression. Genetic barcoding allows monitoring of the clonal output of tumorigenic cells without prospective isolation. In this study, we asked whether tumor clone-initiating cells (TcICs) were genetically heterogeneous and whether differences in self-renewal and activation reflected differential kinetics among individual subclones or functional hierarchies within subclones. Monitoring genomic subclone kinetics in three patient tumors and corresponding serial xenografts and spheroids by high-coverage whole-genome sequencing, clustering of genetic aberrations, subclone combinatorics, and mutational signature analysis revealed at least two to four genetic subclones per sample. Long-term growth in serial xenografts and spheroids was driven by multiple genomic subclones with profoundly differing growth dynamics and hence different quantitative contributions over time. Strikingly, genetic barcoding demonstrated stable functional heterogeneity of CRC TcICs during serial xenografting despite near-complete changes in genomic subclone contribution. This demonstrates that functional heterogeneity is, at least frequently, present within genomic subclones and independent of mutational subclone differences.
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spelling pubmed-55024342018-01-03 Genetic subclone architecture of tumor clone-initiating cells in colorectal cancer Giessler, Klara M. Kleinheinz, Kortine Huebschmann, Daniel Balasubramanian, Gnana Prakash Dubash, Taronish D. Dieter, Sebastian M. Siegl, Christine Herbst, Friederike Weber, Sarah Hoffmann, Christopher M. Fronza, Raffaele Buchhalter, Ivo Paramasivam, Nagarajan Eils, Roland Schmidt, Manfred von Kalle, Christof Schneider, Martin Ulrich, Alexis Scholl, Claudia Fröhling, Stefan Weichert, Wilko Brors, Benedikt Schlesner, Matthias Ball, Claudia R. Glimm, Hanno J Exp Med Research Articles A hierarchically organized cell compartment drives colorectal cancer (CRC) progression. Genetic barcoding allows monitoring of the clonal output of tumorigenic cells without prospective isolation. In this study, we asked whether tumor clone-initiating cells (TcICs) were genetically heterogeneous and whether differences in self-renewal and activation reflected differential kinetics among individual subclones or functional hierarchies within subclones. Monitoring genomic subclone kinetics in three patient tumors and corresponding serial xenografts and spheroids by high-coverage whole-genome sequencing, clustering of genetic aberrations, subclone combinatorics, and mutational signature analysis revealed at least two to four genetic subclones per sample. Long-term growth in serial xenografts and spheroids was driven by multiple genomic subclones with profoundly differing growth dynamics and hence different quantitative contributions over time. Strikingly, genetic barcoding demonstrated stable functional heterogeneity of CRC TcICs during serial xenografting despite near-complete changes in genomic subclone contribution. This demonstrates that functional heterogeneity is, at least frequently, present within genomic subclones and independent of mutational subclone differences. The Rockefeller University Press 2017-07-03 /pmc/articles/PMC5502434/ /pubmed/28572216 http://dx.doi.org/10.1084/jem.20162017 Text en © 2017 Giessler et al. http://www.rupress.org/terms/https://creativecommons.org/licenses/by-nc-sa/4.0/This article is distributed under the terms of an Attribution–Noncommercial–Share Alike–No Mirror Sites license for the first six months after the publication date (see http://www.rupress.org/terms/). After six months it is available under a Creative Commons License (Attribution–Noncommercial–Share Alike 4.0 International license, as described at https://creativecommons.org/licenses/by-nc-sa/4.0/).
spellingShingle Research Articles
Giessler, Klara M.
Kleinheinz, Kortine
Huebschmann, Daniel
Balasubramanian, Gnana Prakash
Dubash, Taronish D.
Dieter, Sebastian M.
Siegl, Christine
Herbst, Friederike
Weber, Sarah
Hoffmann, Christopher M.
Fronza, Raffaele
Buchhalter, Ivo
Paramasivam, Nagarajan
Eils, Roland
Schmidt, Manfred
von Kalle, Christof
Schneider, Martin
Ulrich, Alexis
Scholl, Claudia
Fröhling, Stefan
Weichert, Wilko
Brors, Benedikt
Schlesner, Matthias
Ball, Claudia R.
Glimm, Hanno
Genetic subclone architecture of tumor clone-initiating cells in colorectal cancer
title Genetic subclone architecture of tumor clone-initiating cells in colorectal cancer
title_full Genetic subclone architecture of tumor clone-initiating cells in colorectal cancer
title_fullStr Genetic subclone architecture of tumor clone-initiating cells in colorectal cancer
title_full_unstemmed Genetic subclone architecture of tumor clone-initiating cells in colorectal cancer
title_short Genetic subclone architecture of tumor clone-initiating cells in colorectal cancer
title_sort genetic subclone architecture of tumor clone-initiating cells in colorectal cancer
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5502434/
https://www.ncbi.nlm.nih.gov/pubmed/28572216
http://dx.doi.org/10.1084/jem.20162017
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