Intraspecific variation of recombination rate in maize

被引:155
作者
Bauer, Eva [1 ]
Falque, Matthieu [2 ]
Walter, Hildrun [1 ]
Bauland, Cyril [2 ]
Camisan, Christian [3 ]
Campo, Laura [4 ]
Meyer, Nina [5 ]
Ranc, Nicolas [6 ]
Rincent, Renaud [2 ,3 ,7 ]
Schipprack, Wolfgang [8 ]
Altmann, Thomas [9 ]
Flament, Pascal [3 ]
Melchinger, Albrecht E. [8 ]
Menz, Monica [6 ]
Moreno-Gonzalez, Jesus [4 ]
Ouzunova, Milena [5 ]
Revilla, Pedro [10 ]
Charcosset, Alain [2 ]
Martin, Olivier C. [2 ]
Schoen, Chris-Carolin [1 ]
机构
[1] Tech Univ Munich, D-85354 Freising Weihenstephan, Germany
[2] Univ Paris 11, UMR Genet Vegetale, INRA, CNRS, F-91190 Gif Sur Yvette, France
[3] Limagrain Europe, F-63720 Chappes, France
[4] CIAM, La Coruna 15080, Spain
[5] KWS SAAT AG, D-37574 Einbeck, Germany
[6] Syngenta SAS, F-31790 St Sauveur, France
[7] BIOGEMMA, F-63720 Chappes, France
[8] Univ Hohenheim, D-70599 Stuttgart, Germany
[9] Leibniz Inst Plant Genet & Crop Plant Res IPK, D-06466 Gatersleben, Germany
[10] Mision Biol Galicia CSIC, Pontevedra 36080, Spain
关键词
DOUBLE-STRAND-BREAK; CROSSOVER INTERFERENCE; LINKAGE DISEQUILIBRIUM; MEIOTIC CROSSOVERS; GENOME; ARABIDOPSIS; REPAIR; MOUSE; LOCI; MAPS;
D O I
10.1186/gb-2013-14-9-r103
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Background: In sexually reproducing organisms, meiotic crossovers ensure the proper segregation of chromosomes and contribute to genetic diversity by shuffling allelic combinations. Such genetic reassortment is exploited in breeding to combine favorable alleles, and in genetic research to identify genetic factors underlying traits of interest via linkage or association-based approaches. Crossover numbers and distributions along chromosomes vary between species, but little is known about their intraspecies variation. Results: Here, we report on the variation of recombination rates between 22 European maize inbred lines that belong to the Dent and Flint gene pools. We genotype 23 doubled-haploid populations derived from crosses between these lines with a 50 k-SNP array and construct high-density genetic maps, showing good correspondence with the maize B73 genome sequence assembly. By aligning each genetic map to the B73 sequence, we obtain the recombination rates along chromosomes specific to each population. We identify significant differences in recombination rates at the genome-wide, chromosome, and intrachromosomal levels between populations, as well as significant variation for genome-wide recombination rates among maize lines. Crossover interference analysis using a two-pathway modeling framework reveals a negative association between recombination rate and interference strength. Conclusions: To our knowledge, the present work provides the most comprehensive study on intraspecific variation of recombination rates and crossover interference strength in eukaryotes. Differences found in recombination rates will allow for selection of high or low recombining lines in crossing programs. Our methodology should pave the way for precise identification of genes controlling recombination rates in maize and other organisms.
引用
收藏
页数:17
相关论文
共 69 条
[1]   Diversity of Chromosomal Karyotypes in Maize and Its Relatives [J].
Albert, P. S. ;
Gao, Z. ;
Danilova, T. V. ;
Birchler, J. A. .
CYTOGENETIC AND GENOME RESEARCH, 2010, 129 (1-3) :6-16
[2]   Fast model-based estimation of ancestry in unrelated individuals [J].
Alexander, David H. ;
Novembre, John ;
Lange, Kenneth .
GENOME RESEARCH, 2009, 19 (09) :1655-1664
[3]  
Anderson LK, 2003, GENETICS, V165, P849
[4]   Regulating double-stranded DNA break repair towards crossover or non-crossover during mammalian meiosis [J].
Baudat, Frederic ;
de Massy, Bernard .
CHROMOSOME RESEARCH, 2007, 15 (05) :565-577
[5]   A LINKAGE MAP BASED ON INFORMATION FROM 4 F2 POPULATIONS OF MAIZE (ZEA-MAYS L) [J].
BEAVIS, WD ;
GRANT, D .
THEORETICAL AND APPLIED GENETICS, 1991, 82 (05) :636-644
[6]   PRDM9 variation strongly influences recombination hot-spot activity and meiotic instability in humans [J].
Berg, Ingrid L. ;
Neumann, Rita ;
Lam, Kwan-Wood G. ;
Sarbajna, Shriparna ;
Odenthal-Hesse, Linda ;
May, Celia A. ;
Jeffreys, Alec J. .
NATURE GENETICS, 2010, 42 (10) :859-+
[7]   Spline methods for the comparison of physical and genetic maps [J].
Berloff, N ;
Perola, M ;
Lange, K .
JOURNAL OF COMPUTATIONAL BIOLOGY, 2002, 9 (03) :465-475
[8]   Evolution of DNA sequence nonhomologies among maize inbreds [J].
Brunner, S ;
Fengler, K ;
Morgante, M ;
Tingey, S ;
Rafalski, A .
PLANT CELL, 2005, 17 (02) :343-360
[9]   A GRAPHICAL REPRESENTATION OF GENETIC AND PHYSICAL MAPS - THE MAREY MAP [J].
CHAKRAVARTI, A .
GENOMICS, 1991, 11 (01) :219-222
[10]   Maize HapMap2 identifies extant variation from a genome in flux [J].
Chia, Jer-Ming ;
Song, Chi ;
Bradbury, Peter J. ;
Costich, Denise ;
de Leon, Natalia ;
Doebley, John ;
Elshire, Robert J. ;
Gaut, Brandon ;
Geller, Laura ;
Glaubitz, Jeffrey C. ;
Gore, Michael ;
Guill, Kate E. ;
Holland, Jim ;
Hufford, Matthew B. ;
Lai, Jinsheng ;
Li, Meng ;
Liu, Xin ;
Lu, Yanli ;
McCombie, Richard ;
Nelson, Rebecca ;
Poland, Jesse ;
Prasanna, Boddupalli M. ;
Pyhaejaervi, Tanja ;
Rong, Tingzhao ;
Sekhon, Rajandeep S. ;
Sun, Qi ;
Tenaillon, Maud I. ;
Tian, Feng ;
Wang, Jun ;
Xu, Xun ;
Zhang, Zhiwu ;
Kaeppler, Shawn M. ;
Ross-Ibarra, Jeffrey ;
McMullen, Michael D. ;
Buckler, Edward S. ;
Zhang, Gengyun ;
Xu, Yunbi ;
Ware, Doreen .
NATURE GENETICS, 2012, 44 (07) :803-U238