Literature DB >> 33253159

Inference of mutability landscapes of tumors from single cell sequencing data.

Viachaslau Tsyvina1, Alex Zelikovsky1, Sagi Snir2, Pavel Skums1.   

Abstract

One of the hallmarks of cancer is the extremely high mutability and genetic instability of tumor cells. Inherent heterogeneity of intra-tumor populations manifests itself in high variability of clone instability rates. Analogously to fitness landscapes, the instability rates of clonal populations form their mutability landscapes. Here, we present MULAN (MUtability LANdscape inference), a maximum-likelihood computational framework for inference of mutation rates of individual cancer subclones using single-cell sequencing data. It utilizes the partial information about the orders of mutation events provided by cancer mutation trees and extends it by inferring full evolutionary history and mutability landscape of a tumor. Evaluation of mutation rates on the level of subclones rather than individual genes allows to capture the effects of genomic interactions and epistasis. We estimate the accuracy of our approach and demonstrate that it can be used to study the evolution of genetic instability and infer tumor evolutionary history from experimental data. MULAN is available at https://github.com/compbel/MULAN.

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Year:  2020        PMID: 33253159      PMCID: PMC7728263          DOI: 10.1371/journal.pcbi.1008454

Source DB:  PubMed          Journal:  PLoS Comput Biol        ISSN: 1553-734X            Impact factor:   4.475


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  2 in total

Review 1.  Application and prospects of single cell sequencing in tumors.

Authors:  Ruo Han Huang; Le Xin Wang; Jing He; Wen Gao
Journal:  Biomark Res       Date:  2021-12-11

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Journal:  J Comput Biol       Date:  2021-10-25       Impact factor: 1.479

  2 in total

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