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Powerful decomposition of complex traits in a diploid model using Phased Outbred Lines

Johan Hallin, Kaspar Märtens, Alexander I. Young, Martin Zackrisson, Francisco Salinas, View ORCID ProfileLeopold Parts, Jonas Warringer, Gianni Liti
doi: https://doi.org/10.1101/042176
Johan Hallin
1Institute for Research on Cancer and Aging, Nice (IRCAN), CNRS UMR7284, INSERM U1081, University of Nice Sophia Antipolis, Nice, France
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Kaspar Märtens
2Institute of Computer Science, University of Tartu, Tartu, Estonia
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Alexander I. Young
3Wellcome Trust Centre for Human Genetics, University of Oxford, Oxford, UK
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Martin Zackrisson
4Department of Chemistry and Molecular Biology, Gothenburg University, Gothenburg, Sweden
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Francisco Salinas
1Institute for Research on Cancer and Aging, Nice (IRCAN), CNRS UMR7284, INSERM U1081, University of Nice Sophia Antipolis, Nice, France
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Leopold Parts
2Institute of Computer Science, University of Tartu, Tartu, Estonia
5Wellcome Trust Sanger Institute, Wellcome Trust Genome Campus, Hinxton, United Kingdom
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  • ORCID record for Leopold Parts
  • For correspondence: gianni.liti@unice.fr jonas.warringer@cmb.se leopold.parts@sanger.ac.uk
Jonas Warringer
4Department of Chemistry and Molecular Biology, Gothenburg University, Gothenburg, Sweden
6Centre for Integrative Genetics (CIGENE), Department of Animal and Aquacultural Sciences, Norwegian University of Life Sciences, As, Norway
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  • For correspondence: gianni.liti@unice.fr jonas.warringer@cmb.se leopold.parts@sanger.ac.uk
Gianni Liti
1Institute for Research on Cancer and Aging, Nice (IRCAN), CNRS UMR7284, INSERM U1081, University of Nice Sophia Antipolis, Nice, France
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  • For correspondence: gianni.liti@unice.fr jonas.warringer@cmb.se leopold.parts@sanger.ac.uk
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ABSTRACT

Explaining trait differences between individuals is a core but challenging aim of life sciences. Here, we introduce a powerful framework for complete decomposition of trait variation into its underlying genetic causes in diploid model organisms. We intercross two natural genomes over many sexual generations, sequence and systematically pair the recombinant gametes into a large array of diploid hybrids with fully assembled and phased genomes, termed Phased Outbred Lines (POLs). We demonstrate the capacity of the framework by partitioning fitness traits of 7310 yeast POLs across many environments, achieving near complete trait heritability (mean H2 = 91%) and precisely estimating additive (74%), dominance (8%), second (9%) and third (1.8%) order epistasis components. We found nonadditive quantitative trait loci (QTLs) to outnumber (3:1) but to be weaker than additive loci; dominant contributions to heterosis to outnumber overdominant (3:1); and pleiotropy to be the rule rather than the exception. The POL approach presented here offers the most complete decomposition of diploid traits to date and can be adapted to most model organisms.

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Posted March 03, 2016.
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Powerful decomposition of complex traits in a diploid model using Phased Outbred Lines
Johan Hallin, Kaspar Märtens, Alexander I. Young, Martin Zackrisson, Francisco Salinas, Leopold Parts, Jonas Warringer, Gianni Liti
bioRxiv 042176; doi: https://doi.org/10.1101/042176
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Powerful decomposition of complex traits in a diploid model using Phased Outbred Lines
Johan Hallin, Kaspar Märtens, Alexander I. Young, Martin Zackrisson, Francisco Salinas, Leopold Parts, Jonas Warringer, Gianni Liti
bioRxiv 042176; doi: https://doi.org/10.1101/042176

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