Literature DB >> 17486310

Identification and linkage mapping of complementary recessive genes causing hybrid breakdown in an intraspecific rice cross.

K Matsubara1, T Ando, T Mizubayashi, S Ito, M Yano.   

Abstract

One outcome of hybrid breakdown is poor growth, which we observed as a reduction in the number of panicles per plant and in culm length in an F(2) population derived from a cross between the genetically divergent rice (Oryza sativa L.) cultivars 'Sasanishiki' (japonica) and 'Habataki' (indica). Quantitative trait locus (QTL) analysis of the two traits and two-way ANOVA of the detected QTLs suggested that the poor growth was due mainly to an epistatic interaction between genes at QTLs located on chromosomes 2 and 11. The poor growth was likely to result when a plant was homozygous for the 'Habataki' allele at the QTL on chromosome 2 and homozygous for the 'Sasanishiki' allele at the QTL on chromosome 11. The results suggest that the poor growth found in the F(2) population was due to hybrid breakdown of a set of complementary genes. To test this hypothesis and determine the precise chromosomal location of the genes causing the hybrid breakdown, we performed genetic analyses using a chromosome segment substitution line, in which a part of chromosome 2 from 'Habataki' was substituted into the genetic background of 'Sasanishiki'. The segregation patterns of poor growth in plants suggested that both of the genes underlying the hybrid breakdown were recessive. The gene on chromosome 2, designated hybrid breakdown 2 (hbd2), was mapped between simple sequence repeat markers RM3515 and RM3730. The gene on chromosome 11, hbd3, was mapped between RM5824 and RM1341.

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Year:  2007        PMID: 17486310     DOI: 10.1007/s00122-007-0553-x

Source DB:  PubMed          Journal:  Theor Appl Genet        ISSN: 0040-5752            Impact factor:   5.699


  28 in total

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2.  Identification of quantitative trait loci across recombinant inbred lines and testcross populations for traits of agronomic importance in rice.

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3.  Cytokinin oxidase regulates rice grain production.

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4.  An SNP caused loss of seed shattering during rice domestication.

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5.  Studies on Hybrid Sterility. II. Localization of Sterility Factors in Drosophila Pseudoobscura Hybrids.

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9.  A gene block causing cross-incompatibility hidden in wild and cultivated rice.

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  16 in total

1.  Fine mapping and candidate gene analysis of hwh1 and hwh2, a set of complementary genes controlling hybrid breakdown in rice.

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2.  Genetic dissection and pyramiding of quantitative traits for panicle architecture by using chromosomal segment substitution lines in rice.

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4.  Chromosomal locations of a gene underlying heat-accelerated brown spot formation and its suppressor genes in rice.

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5.  Relationship between transmission ratio distortion and genetic divergence in intraspecific rice crosses.

Authors:  Kazuki Matsubara; Kaworu Ebana; Tatsumi Mizubayashi; Sachie Itoh; Tsuyu Ando; Yasunori Nonoue; Nozomi Ono; Taeko Shibaya; Eri Ogiso; Kiyosumi Hori; Shuichi Fukuoka; Masahiro Yano
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6.  A Novel Combination of Genes Causing Temperature-Sensitive Hybrid Weakness in Rice.

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Review 9.  Towards the understanding of complex traits in rice: substantially or superficially?

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10.  Interspecific tests of allelism reveal the evolutionary timing and pattern of accumulation of reproductive isolation mutations.

Authors:  Natasha A Sherman; Anna Victorine; Richard J Wang; Leonie C Moyle
Journal:  PLoS Genet       Date:  2014-09-11       Impact factor: 5.917

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