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Oncogenic Gene Fusion Detection Using Anchored Multiplex Polymerase Chain Reaction Followed by Next Generation Sequencing
Published on: July 5, 2019
Open-access synthetic spike-in mRNA-seq data for cancer gene fusions
Waibhav D Tembe1, Stephanie J K Pond, Christophe Legendre
1Translational Genomics Research Institute (TGen), 445 N 5th Street, SUITE 600, Phoenix, AZ 85004, USA. wtembe@tgen.org.
Background:
Oncogenic fusion genes underlie the mechanism of several common cancers. Next-generation sequencing based RNA-seq analyses have revealed an increasing number of recurrent fusions in a variety of cancers. However, absence of a publicly available gene-fusion focused RNA-seq data impedes comparative assessment and collaborative development of novel gene fusions detection algorithms. We have generated nine synthetic poly-adenylated RNA transcripts that correspond to previously reported oncogenic gene fusions. These synthetic RNAs were spiked at known molarity over a wide range into total RNA prior to construction of next-generation sequencing mRNA libraries to generate RNA-seq data.
Results:
Leveraging a priori knowledge about replicates and molarity of each synthetic fusion transcript, we demonstrate utility of this dataset to compare multiple gene fusion algorithms' detection ability. In general, more fusions are detected at higher molarity, indicating that our constructs performed as expected. However, systematic detection differences are observed based on molarity or algorithm-specific characteristics. Fusion-sequence specific detection differences indicate that for applications where specific sequences are being investigated, additional constructs may be added to provide quantitative data that is specific for the sequence of interest.
Conclusions:
To our knowledge, this is the first publicly available synthetic RNA-seq data that specifically leverages known cancer gene-fusions. The proposed method of designing multiple gene-fusion constructs over a wide range of molarity allows granular performance analyses of multiple fusion-detection algorithms. The community can leverage and augment this publicly available data to further collaborative development of analytical tools and performance assessment frameworks for gene fusions from next-generation sequencing data.
Insights
This study introduces the first public synthetic RNA-sequencing dataset for cancer gene fusions. This resource enables the comparative assessment and collaborative development of novel gene fusion detection algorithms.
Area of Science:
- Genomics
- Cancer Biology
- Bioinformatics
Background:
- Oncogenic fusion genes are key drivers in many cancers.
- Next-generation sequencing (RNA-seq) has identified numerous recurrent fusions.
- Lack of public gene-fusion RNA-seq data hinders algorithm development and comparison.
Purpose of the Study:
- To create a novel, publicly available synthetic RNA-sequencing dataset.
- To include known oncogenic gene fusions at varying molarities.
- To facilitate the evaluation and advancement of gene fusion detection tools.
Main Methods:
- Generated nine synthetic RNA transcripts representing known oncogenic gene fusions.
- Spiked synthetic RNAs into total RNA at defined molarities.
- Constructed next-generation sequencing mRNA libraries and generated RNA-seq data.
Main Results:
- Demonstrated the dataset's utility for comparing gene fusion detection algorithms.
- Observed increased fusion detection with higher synthetic RNA molarity.
- Identified systematic detection differences based on molarity and algorithm characteristics.
Conclusions:
- This is the first public synthetic RNA-seq dataset focused on cancer gene fusions.
- The dataset enables granular performance analysis of fusion detection algorithms.
- Encourages community collaboration for developing and assessing gene fusion analysis tools.
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