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Related Concept Videos

RNA-seq03:21

RNA-seq

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RNA sequencing, or RNA-Seq, is a high-throughput sequencing technology used to study the transcriptome of a cell. Transcriptomics helps to interpret the functional elements of a genome and identify the molecular constituents of an organism. Additionally, it also helps in understanding the development of an organism and the occurrence of diseases. 
Before the discovery of RNA-seq, microarray-based methods and Sanger sequencing were used for transcriptome analysis. However, while...
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Ribosome profiling or ribo-sequencing is a deep sequencing technique that produces a snapshot of active translation in a cell. It selectively sequences the mRNAs protected by ribosomes to get an insight into a cell’s translation landscape at any given point in time.
Applications of ribosome profiling
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Related Experiment Video

Updated: Dec 30, 2025

A Combinatorial Single-cell Approach to Characterize the Molecular and Immunophenotypic Heterogeneity of Human Stem and Progenitor Populations
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DENDRO: genetic heterogeneity profiling and subclone detection by single-cell RNA sequencing.

Zilu Zhou1,2, Bihui Xu3, Andy Minn4

  • 1Graduate Group in Genomics and Computational Biology, University of Pennsylvania, Philadelphia, PA, USA.

Genome Biology
|January 16, 2020
PubMed
Summary

DENDRO reliably identifies cancer cell subclones and reconstructs their evolutionary history using single-cell RNA sequencing data. This method improves understanding of tumor evolution and treatment response.

Keywords:
Cancer genomicsIntratumor heterogeneityMulti-omics analysisPhylogeny inferenceSingle-cell RNA sequencing

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Area of Science:

  • Genomics
  • Computational Biology
  • Cancer Research

Background:

  • Single-cell RNA sequencing (scRNA-seq) is widely used for studying intratumor heterogeneity.
  • Current methods for detecting somatic mutations and inferring clonal membership from scRNA-seq data are unreliable.
  • Accurate subclonal identification is crucial for understanding cancer evolution and treatment resistance.

Purpose of the Study:

  • To develop and validate DENDRO, a novel computational method for analyzing scRNA-seq data.
  • To accurately cluster single cells into genetically distinct subclones.
  • To reconstruct the phylogenetic tree representing the evolutionary relationships between cancer subclones.

Main Methods:

  • DENDRO utilizes transcribed point mutations detected in scRNA-seq data.
  • The method incorporates algorithms to account for technical noise and expression stochasticity inherent in scRNA-seq.
  • DENDRO clusters cells and infers phylogenetic relationships.

Main Results:

  • DENDRO was benchmarked using simulation data and applied to real-world data from three cancer types.
  • The method demonstrated reliable performance in identifying subclones and reconstructing phylogenies.
  • Application to a mouse melanoma model revealed the role of neoantigens in immunotherapy response.

Conclusions:

  • DENDRO provides a robust approach for analyzing scRNA-seq data to study tumor phylogenetics.
  • The method enhances the reliable detection of somatic mutations and clonal architecture in tumors.
  • DENDRO offers insights into cancer evolution, particularly in response to therapeutic interventions like immunotherapy.