Literature DB >> 18516584

A major locus expressed in the male gametophyte with incomplete penetrance is responsible for in situ gynogenesis in maize.

P Barret1, M Brinkmann, M Beckert.   

Abstract

In flowering plants, double fertilization occurs when the egg cell and the central cell are each fertilized by one sperm cell. In maize, some lines produce pollen capable of inducing in situ gynogenesis thereby leading to maternal haploids that originate exclusively from the female plant. In this paper, we present a genetic analysis of in situ gynogenesis in maize. Using a cross between non-inducing and inducing lines, we identified a major locus on maize chromosome 1 controlling in situ gynogenesis (ggi1, for gynogenesis inducer 1). Fine mapping of this locus was performed, and BAC physical contigs spanning the locus were identified using the rice genome as anchor. Genetic component analysis showed that (a) a segregation distortion against the inducer parent was present at this locus, (b) segregation resulted only from male deficiency and (c) there was a correlation between the rate of segregation distortion and the level of gynogenetic induction. In addition, our results showed that the genotype of the pollen determined its capacity to induce the formation of a haploid female embryo, indicating gametophytic expression of the character with incomplete penetrance. We propose the occurrence of a gametophytic-specific process which leads to segregation distortion at the ggi1 locus associated with gynogenetic induction with incomplete penetrance.

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Year:  2008        PMID: 18516584     DOI: 10.1007/s00122-008-0803-6

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


  49 in total

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Review 4.  Experimental analysis of the fertilization process.

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  29 in total

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8.  Genomic prediction of dichotomous traits with Bayesian logistic models.

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9.  Fine mapping of qhir1 influencing in vivo haploid induction in maize.

Authors:  X Dong; X Xu; J Miao; L Li; D Zhang; X Mi; C Liu; X Tian; A E Melchinger; S Chen
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Review 10.  Puzzling out plant reproduction by haploid induction for innovations in plant breeding.

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