Fine-Mapping Nicotine Resistance Loci in Drosophila Using a Multiparent Advanced Generation Inter-Cross Population

被引:36
|
作者
Marriage, Tara N. [1 ]
King, Elizabeth G. [2 ]
Long, Anthony D. [2 ]
Macdonald, Stuart J. [1 ]
机构
[1] Univ Kansas, Dept Mol Biosci, Lawrence, KS 66045 USA
[2] Univ Calif Irvine, Dept Ecol & Evolutionary Biol, Irvine, CA 92697 USA
基金
美国国家卫生研究院;
关键词
QUANTITATIVE TRAIT LOCI; GENOME-WIDE ASSOCIATION; INSECTICIDE RESISTANCE; GENETIC ARCHITECTURE; BRISTLE NUMBER; COMPLEX TRAITS; ACHAETE-SCUTE; RECOMBINANT POPULATIONS; TRANSPOSABLE ELEMENTS; DETOXIFICATION GENE;
D O I
10.1534/genetics.114.162107
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
Animals in nature are frequently challenged by toxic compounds, from those that occur naturally in plants as a defense against herbivory, to pesticides used to protect crops. On exposure to such xenobiotic substances, animals mount a transcriptional response, generating detoxification enzymes and transporters that metabolize and remove the toxin. Genetic variation in this response can lead to variation in the susceptibility of different genotypes to the toxic effects of a given xenobiotic. Here we use Drosophila melanogaster to dissect the genetic basis of larval resistance to nicotine, a common plant defense chemical and widely used addictive drug in humans. We identified quantitative trait loci (QTL) for the trait using the DSPR (Drosophila Synthetic Population Resource), a panel of multiparental advanced intercross lines. Mapped QTL collectively explain 68.4% of the broad-sense heritability for nicotine resistance. The two largest-effect loci-contributing 50.3 and 8.5% to the genetic variation-map to short regions encompassing members of classic detoxification gene families. The largest QTL resides over a cluster of ten UDP-glucuronosyltransferase (UGT) genes, while the next largest QTL harbors a pair of cytochrome P450 genes. Using RNAseq we measured gene expression in a pair of DSPR founders predicted to harbor different alleles at both QTL and showed that Ugt86Dd, Cyp28d1, and Cyp28d2 had significantly higher expression in the founder carrying the allele conferring greater resistance. These genes are very strong candidates to harbor causative, regulatory polymorphisms that explain a large fraction of the genetic variation in larval nicotine resistance in the DSPR.
引用
收藏
页码:45 / +
页数:28
相关论文
共 29 条
  • [1] A multiparent advanced generation inter-cross population for genetic analysis in wheat
    Huang, Bevan E.
    George, Andrew W.
    Forrest, Kerrie L.
    Kilian, Andrzej
    Hayden, Matthew J.
    Morell, Matthew K.
    Cavanagh, Colin R.
    PLANT BIOTECHNOLOGY JOURNAL, 2012, 10 (07) : 826 - 839
  • [2] A Multiparent Advanced Generation Inter-Cross to Fine-Map Quantitative Traits in Arabidopsis thaliana
    Kover, Paula X.
    Valdar, William
    Trakalo, Joseph
    Scarcelli, Nora
    Ehrenreich, Ian M.
    Purugganan, Michael D.
    Durrant, Caroline
    Mott, Richard
    PLOS GENETICS, 2009, 5 (07)
  • [3] Development and Characterization of a Multiparent Advanced Generation Inter-Cross (MAGIC) Population of Jute (Corchorus olitorius)
    Pratik Satya
    Debajeet Das
    Nur Alam Mandal
    Avijit Kundu
    Debabrata Sarkar
    Chandan Sourav Kar
    Jiban Mitra
    Gouranga Kar
    Nagendra Kumar Singh
    Agricultural Research, 2023, 12 : 266 - 276
  • [4] Development and Characterization of a Multiparent Advanced Generation Inter-Cross (MAGIC) Population of Jute (Corchorus olitorius)
    Satya, Pratik
    Das, Debajeet
    Mandal, Nur Alam
    Kundu, Avijit
    Sarkar, Debabrata
    Kar, Chandan Sourav
    Mitra, Jiban
    Kar, Gouranga
    Singh, Nagendra Kumar
    AGRICULTURAL RESEARCH, 2023, 12 (03) : 266 - 276
  • [5] Fine-Mapping the Wheat Snn1 Locus Conferring Sensitivity to the Parastagonospora nodorum Necrotrophic Effector SnTox1 Using an Eight Founder Multiparent Advanced Generation Inter-Cross Population
    Cockram, James
    Scuderi, Alice
    Barber, Toby
    Furuki, Eiko
    Gardner, Keith A.
    Gosman, Nick
    Kowalczyk, Radoslaw
    Phan, Huyen P.
    Rose, Gemma A.
    Tan, Kar-Chun
    Oliver, Richard P.
    Mackay, Ian J.
    G3-GENES GENOMES GENETICS, 2015, 5 (11): : 2257 - 2266
  • [6] An Eight-Parent Multiparent Advanced Generation Inter-Cross Population for Winter-Sown Wheat: Creation, Properties, and Validation
    Mackay, Ian J.
    Bansept-Basler, Pauline
    Barber, Toby
    Bentley, Alison R.
    Cockram, James
    Gosman, Nick
    Greenland, Andy J.
    Horsnell, Richard
    Howells, Rhian
    O'Sullivan, Donal M.
    Rose, Gemma A.
    Howell, Phil J.
    G3-GENES GENOMES GENETICS, 2014, 4 (09): : 1603 - 1610
  • [7] Crafting for a better MAGIC: systematic design and test for Multiparental Advanced Generation Inter-Cross population
    Yang, Chin Jian
    Edmondson, Rodney N.
    Piepho, Hans-Peter
    Powell, Wayne
    Mackay, Ian
    G3-GENES GENOMES GENETICS, 2021, 11 (11):
  • [8] Association mapping for frost tolerance using multi-parent advanced generation inter-cross (MAGIC) population in faba bean (Vicia faba L.)
    Ahmed Sallam
    Regina Martsch
    Genetica, 2015, 143 : 501 - 514
  • [9] Evaluation of a multi-parent advanced generation inter-cross (MAGIC) introgressed line population for Verticillium wilt resistance in Upland cotton
    Martinez, Gasper
    Abdelraheem, Abdelraheem
    Darapuneni, Murali
    Jenkins, J. N.
    McCarty, J. C., Jr.
    Zhang, Jinfa
    EUPHYTICA, 2018, 214 (10)
  • [10] Evaluation of a multi-parent advanced generation inter-cross (MAGIC) introgressed line population for Verticillium wilt resistance in Upland cotton
    Gasper Martinez
    Abdelraheem Abdelraheem
    Murali Darapuneni
    J. N. Jenkins
    J. C. McCarty
    Jinfa Zhang
    Euphytica, 2018, 214