A workflow to increase verification rate of chromosomal structural rearrangements using high-throughput next-generation sequencing. (July 2014)
- Record Type:
- Journal Article
- Title:
- A workflow to increase verification rate of chromosomal structural rearrangements using high-throughput next-generation sequencing. (July 2014)
- Main Title:
- A workflow to increase verification rate of chromosomal structural rearrangements using high-throughput next-generation sequencing
- Authors:
- Quek, Kelly
Nones, Katia
Patch, Ann-Marie
Fink, J. Lynn
Newell, Felicity
Cloonan, Nicole
Miller, David
Fadlullah, Muhammad Z. H.
Kassahn, Karin
Christ, Angelika N.
Bruxner, Timothy J. C.
Manning, Suzanne
Harliwong, Ivon
Idrisoglu, Senel
Nourse, Craig
Nourbakhsh, Ehsan
Wani, Shivangi
Steptoe, Anita
Anderson, Matthew
Holmes, Oliver
Leonard, Conrad
Taylor, Darrin
Wood, Scott
Xu, Qinying
, Australian Pancreatic Cancer Genome Initiative
Wilson, Peter
Biankin, Andrew V.
Pearson, John V.
Waddell, Nic
Grimmond, Sean M. - Abstract:
- Somatic rearrangements, which are commonly found in human cancer genomes, contribute to the progression and maintenance of cancers. Conventionally, the verification of somatic rearrangements comprises many manual steps and Sanger sequencing. This is labor intensive when verifying a large number of rearrangements in a large cohort. To increase the verification throughput, we devised a high-throughput workflow that utilizes benchtop next-generation sequencing and in-house bioinformatics tools to link the laboratory processes. In the proposed workflow, primers are automatically designed. PCR and an optional gel electrophoresis step to confirm the somatic nature of the rearrangements are performed. PCR products of somatic events are pooled for Ion Torrent PGM and/or Illumina MiSeq sequencing, the resulting sequence reads are assembled into consensus contigs by a consensus assembler, and an automated BLAT is used to resolve the breakpoints to base level. We compared sequences and breakpoints of verified somatic rearrangements between the conventional and high-throughput workflow. The results showed that next-generation sequencing methods are comparable to conventional Sanger sequencing. The identified breakpoints obtained from next-generation sequencing methods were highly accurate and reproducible. Furthermore, the proposed workflow allows hundreds of events to be processed in a shorter time frame compared with the conventional workflow.
- Is Part Of:
- Biotechniques. Volume 57:Number 1(2014)
- Journal:
- Biotechniques
- Issue:
- Volume 57:Number 1(2014)
- Issue Display:
- Volume 57, Issue 1 (2014)
- Year:
- 2014
- Volume:
- 57
- Issue:
- 1
- Issue Sort Value:
- 2014-0057-0001-0000
- Page Start:
- 31
- Page End:
- 38
- Publication Date:
- 2014-07
- Subjects:
- next-generation sequencing -- cancer -- chromosome breakpoints -- structural variation -- verification -- high-throughput
Biology, Experimental -- Periodicals
Molecular biology -- Periodicals
Medical technology -- Periodicals
Biology, Experimental
Medical technology
Molecular biology
Clinical Laboratory Techniques -- Periodicals
Research -- Periodicals
Medical Laboratory Science -- Periodicals
Periodicals
Electronic journals
570 - Journal URLs:
- http://www.biotechniques.com/ ↗
https://www.future-science.com/journal/btn ↗
http://www.futuremedicine.com/ ↗ - DOI:
- 10.2144/000114189 ↗
- Languages:
- English
- ISSNs:
- 0736-6205
- Deposit Type:
- Legaldeposit
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