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Illumina TruSeq synthetic long-reads empower de novo assembly and resolve complex, highly repetitive transposable elements
Rajiv C. McCoy, Ryan W. Taylor, Timothy A. Blauwkamp, Joanna L. Kelley, Michael Kertesz, Dmitry Pushkarev, Dmitri A. Petrov, Anna-Sophie Fiston-Lavier
doi: https://doi.org/10.1101/001834
Rajiv C. McCoy
1Department of Biology, Stanford University, Stanford, California, USA
Ryan W. Taylor
1Department of Biology, Stanford University, Stanford, California, USA
Timothy A. Blauwkamp
2Illumina Inc., San Diego, California, USA
Joanna L. Kelley
3School of Biological Sciences, Washington State University, Pullman, Washington, USA
Michael Kertesz
4Department of Bioengineering, Stanford University, Stanford, California, USA
Dmitry Pushkarev
5Department of Physics, Stanford University, Stanford, California, USA
Dmitri A. Petrov
1Department of Biology, Stanford University, Stanford, California, USA
Anna-Sophie Fiston-Lavier
1Department of Biology, Stanford University, Stanford, California, USA
6Institut des Sciences de l’Evolution-Montpellier, Montpellier, Cedex 5, France
Article usage
Posted June 17, 2014.
Illumina TruSeq synthetic long-reads empower de novo assembly and resolve complex, highly repetitive transposable elements
Rajiv C. McCoy, Ryan W. Taylor, Timothy A. Blauwkamp, Joanna L. Kelley, Michael Kertesz, Dmitry Pushkarev, Dmitri A. Petrov, Anna-Sophie Fiston-Lavier
bioRxiv 001834; doi: https://doi.org/10.1101/001834
Illumina TruSeq synthetic long-reads empower de novo assembly and resolve complex, highly repetitive transposable elements
Rajiv C. McCoy, Ryan W. Taylor, Timothy A. Blauwkamp, Joanna L. Kelley, Michael Kertesz, Dmitry Pushkarev, Dmitri A. Petrov, Anna-Sophie Fiston-Lavier
bioRxiv 001834; doi: https://doi.org/10.1101/001834
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