Genetic architecture of highly complex chemical resistance traits across four yeast strains.

Many questions about the genetic basis of complex traits remain unanswered. This is in part due to the low statistical power of traditional genetic mapping studies. We used a statistically powerful approach, extreme QTL mapping (X-QTL), to identify the genetic basis of resistance to 13 chemicals in...

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Main Authors: Ian M Ehrenreich, Joshua Bloom, Noorossadat Torabi, Xin Wang, Yue Jia, Leonid Kruglyak
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2012-01-01
Series:PLoS Genetics
Online Access:http://europepmc.org/articles/PMC3305394?pdf=render
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author Ian M Ehrenreich
Joshua Bloom
Noorossadat Torabi
Xin Wang
Yue Jia
Leonid Kruglyak
author_facet Ian M Ehrenreich
Joshua Bloom
Noorossadat Torabi
Xin Wang
Yue Jia
Leonid Kruglyak
author_sort Ian M Ehrenreich
collection DOAJ
description Many questions about the genetic basis of complex traits remain unanswered. This is in part due to the low statistical power of traditional genetic mapping studies. We used a statistically powerful approach, extreme QTL mapping (X-QTL), to identify the genetic basis of resistance to 13 chemicals in all 6 pairwise crosses of four ecologically and genetically diverse yeast strains, and we detected a total of more than 800 loci. We found that the number of loci detected in each experiment was primarily a function of the trait (explaining 46% of the variance) rather than the cross (11%), suggesting that the level of genetic complexity is a consistent property of a trait across different genetic backgrounds. Further, we observed that most loci had trait-specific effects, although a small number of loci with effects in many conditions were identified. We used the patterns of resistance and susceptibility alleles in the four parent strains to make inferences about the allele frequency spectrum of functional variants. We also observed evidence of more complex allelic series at a number of loci, as well as strain-specific signatures of selection. These results improve our understanding of complex traits in yeast and have implications for study design in other organisms.
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spelling doaj.art-78a6d649ca4c47adb0a155eff10bcc7a2022-12-22T02:33:43ZengPublic Library of Science (PLoS)PLoS Genetics1553-73901553-74042012-01-0183e100257010.1371/journal.pgen.1002570Genetic architecture of highly complex chemical resistance traits across four yeast strains.Ian M EhrenreichJoshua BloomNoorossadat TorabiXin WangYue JiaLeonid KruglyakMany questions about the genetic basis of complex traits remain unanswered. This is in part due to the low statistical power of traditional genetic mapping studies. We used a statistically powerful approach, extreme QTL mapping (X-QTL), to identify the genetic basis of resistance to 13 chemicals in all 6 pairwise crosses of four ecologically and genetically diverse yeast strains, and we detected a total of more than 800 loci. We found that the number of loci detected in each experiment was primarily a function of the trait (explaining 46% of the variance) rather than the cross (11%), suggesting that the level of genetic complexity is a consistent property of a trait across different genetic backgrounds. Further, we observed that most loci had trait-specific effects, although a small number of loci with effects in many conditions were identified. We used the patterns of resistance and susceptibility alleles in the four parent strains to make inferences about the allele frequency spectrum of functional variants. We also observed evidence of more complex allelic series at a number of loci, as well as strain-specific signatures of selection. These results improve our understanding of complex traits in yeast and have implications for study design in other organisms.http://europepmc.org/articles/PMC3305394?pdf=render
spellingShingle Ian M Ehrenreich
Joshua Bloom
Noorossadat Torabi
Xin Wang
Yue Jia
Leonid Kruglyak
Genetic architecture of highly complex chemical resistance traits across four yeast strains.
PLoS Genetics
title Genetic architecture of highly complex chemical resistance traits across four yeast strains.
title_full Genetic architecture of highly complex chemical resistance traits across four yeast strains.
title_fullStr Genetic architecture of highly complex chemical resistance traits across four yeast strains.
title_full_unstemmed Genetic architecture of highly complex chemical resistance traits across four yeast strains.
title_short Genetic architecture of highly complex chemical resistance traits across four yeast strains.
title_sort genetic architecture of highly complex chemical resistance traits across four yeast strains
url http://europepmc.org/articles/PMC3305394?pdf=render
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