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Verfasst von:Stiehl, Thomas [VerfasserIn]   i
 Marciniak-Czochra, Anna [VerfasserIn]   i
Titel:Computational reconstruction of clonal hierarchies from bulk sequencing data of acute myeloid leukemia samples
Verf.angabe:Thomas Stiehl and Anna Marciniak-Czochra
E-Jahr:2021
Jahr:23 August 2021
Umfang:13 S.
Fussnoten:Gesehen am 20.10.2021
Titel Quelle:Enthalten in: Frontiers in physiology
Ort Quelle:Lausanne : Frontiers Research Foundation, 2007
Jahr Quelle:2021
Band/Heft Quelle:12(2021), Artikel-ID 596194, Seite 1-13
ISSN Quelle:1664-042X
Abstract:Acute myeloid leukemia is an aggressive cancer of the blood forming system. The malignant cell population is composed of multiple clones that evolve over time. Clonal data reflect the mechanisms governing treatment response and relapse. Single cell sequencing provides most direct insights into the clonal composition of the leukemic cells, however it is still not routinely available in clinical practice. In this work we develop a computational algorithm that allows identifying all clonal hierarchies that are compatible with bulk variant allele frequencies measured in a patient sample. The clonal hierarchies represent descendance relations between the different clones and reveal the order in which mutations have been acquired. The proposed computational approach is tested using single cell sequencing data that allow comparing the outcome of the algorithm with the true structure of the clonal hierarchy. We investigate which problems occur during reconstruction of clonal hierarchies from bulk sequencing data. Our results suggest that in many cases only a small number of possible hierarchies fits the bulk data. This implies that bulk sequencing data can be used to obtain insights in clonal evolution.
DOI:doi:10.3389/fphys.2021.596194
URL:kostenfrei: Volltext ; Verlag: https://doi.org/10.3389/fphys.2021.596194
 kostenfrei: Volltext: https://www.frontiersin.org/article/10.3389/fphys.2021.596194
 DOI: https://doi.org/10.3389/fphys.2021.596194
Datenträger:Online-Ressource
Sprache:eng
K10plus-PPN:1774574748
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