Intratumoural heterogeneity complicates the molecular interpretation of biopsies, as multiple distinct tumour genomes are sampled and analysed at once. Ignoring the presence of these populations can lead to erroneous conclusions, and so a correct analysis must account for the clonal structure of the sample. Several methods to reconstruct tumour clonality from sequencing data have been proposed, spanning methods that either do not consider phylogenetic constraints or posit a perfect phylogeny. Models of the first type are typically latent feature models that can describe the observed data flexibly, but whose results may not be reconcilable with a phylogeny. The second type, instead, generally comprises non-parametric mixture models, with str...
Background: Intra-tumour heterogeneity (ITH) is the result of ongoing evolutionary change within eac...
Intra-tumor heterogeneity presents itself through the evolution of subclones during cancer progressi...
Tumours accumulate many somatic mutations in their lifetime. Some of these mutations, drivers, conve...
Tumours develop in an evolutionary process, in which the accumulation of mutations produces subpopul...
Tumours develop in an evolutionary process, in which the accumulation of mutations produces subpopul...
Tumours develop in an evolutionary process, in which the accumulation of mutations produces subpopul...
Clonal deconvolution of mutational landscapes is crucial to understand the evolutionary dynamics of ...
As sequencing efforts continue to reveal the extent of the intratumor heterogeneity (ITH) present in...
Intra-tumour genetic heterogeneity is the result of ongoing evolutionary change within each cancer. ...
Tumour development has long been recognised as an evolutionary process during which cells accumulate...
Tumours are composed of multiple subpopulations, each of which has its own genotype and phenotype. ...
Intra-tumour genetic heterogeneity is the result of ongoing evolutionary change within each cancer. ...
© 2020 Luis Eduardo Lara-GonzalezIntra and inter-tumour heterogeneity poses a challenge for associat...
Abstract Background High-throughput sequencing allows...
Abstract Background High-throughput sequencing allows...
Background: Intra-tumour heterogeneity (ITH) is the result of ongoing evolutionary change within eac...
Intra-tumor heterogeneity presents itself through the evolution of subclones during cancer progressi...
Tumours accumulate many somatic mutations in their lifetime. Some of these mutations, drivers, conve...
Tumours develop in an evolutionary process, in which the accumulation of mutations produces subpopul...
Tumours develop in an evolutionary process, in which the accumulation of mutations produces subpopul...
Tumours develop in an evolutionary process, in which the accumulation of mutations produces subpopul...
Clonal deconvolution of mutational landscapes is crucial to understand the evolutionary dynamics of ...
As sequencing efforts continue to reveal the extent of the intratumor heterogeneity (ITH) present in...
Intra-tumour genetic heterogeneity is the result of ongoing evolutionary change within each cancer. ...
Tumour development has long been recognised as an evolutionary process during which cells accumulate...
Tumours are composed of multiple subpopulations, each of which has its own genotype and phenotype. ...
Intra-tumour genetic heterogeneity is the result of ongoing evolutionary change within each cancer. ...
© 2020 Luis Eduardo Lara-GonzalezIntra and inter-tumour heterogeneity poses a challenge for associat...
Abstract Background High-throughput sequencing allows...
Abstract Background High-throughput sequencing allows...
Background: Intra-tumour heterogeneity (ITH) is the result of ongoing evolutionary change within eac...
Intra-tumor heterogeneity presents itself through the evolution of subclones during cancer progressi...
Tumours accumulate many somatic mutations in their lifetime. Some of these mutations, drivers, conve...