Literature DB >> 21713535

A molecular map of the apomixis-control locus in Paspalum procurrens and its comparative analysis with other species of Paspalum.

D H Hojsgaard1, E J Martínez, C A Acuña, C L Quarin, F Pupilli.   

Abstract

Since apomixis was first mapped in Paspalum, the absence of recombination that characterizes the related locus appeared to be the most difficult bottleneck to overcome for the dissection of the genetic determinants that control this trait. An approach to break the block of recombination was developed in this genus through an among-species comparative mapping strategy. A new apomictic species, P. procurrens (Q4094) was crossed with a sexual plant of P. simplex and their progeny was classified for reproductive mode with the aid of morphological, embryological and genetic analyses. On this progeny, a set of heterologous rice RFLP markers strictly co-segregating in coupling phase with apomixis was identified. These markers were all located on the telomeric region of the long arm of the chromosome 12 of rice. In spite of the lack of recombination exhibited by the apomixis-linked markers in P. procurrens, a comparative mapping analysis among P. simplex, P. malacophyllum, P. notatum and P. procurrens, allowed us to identify a small group of markers co-segregating with apomixis in all these species. These markers bracketed a chromosome region that likely contains all the genetic determinants of apomictic reproduction in Paspalum. The implications of this new inter-specific approach for overcoming the block of recombination to isolate the genetic determinants of apomixis and gain a better comprehension of genome structure of apomictic chromosome region are discussed.

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Year:  2011        PMID: 21713535     DOI: 10.1007/s00122-011-1639-z

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


  38 in total

1.  Ecological and evolutionary opportunities of apomixis: insights from Taraxacum and Chondrilla.

Authors:  Peter J van Dijk
Journal:  Philos Trans R Soc Lond B Biol Sci       Date:  2003-06-29       Impact factor: 6.237

2.  Non-Mendelian transmission of apomixis in maize-Tripsacum hybrids caused by a transmission ratio distortion.

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4.  Tight clustering and hemizygosity of apomixis-linked molecular markers in Pennisetum squamulatum implies genetic control of apospory by a divergent locus that may have no allelic form in sexual genotypes.

Authors:  P Ozias-Akins; D Roche; W W Hanna
Journal:  Proc Natl Acad Sci U S A       Date:  1998-04-28       Impact factor: 11.205

5.  Developmental expression of ASG- 1 during gametogenesis in apomictic guinea grass (Panicum maximum).

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Authors:  R D Noyes; L H Rieseberg
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8.  Gamete formation without meiosis in Arabidopsis.

Authors:  Maruthachalam Ravi; Mohan P A Marimuthu; Imran Siddiqi
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9.  MAPMAKER: an interactive computer package for constructing primary genetic linkage maps of experimental and natural populations.

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10.  Comparative mapping reveals partial conservation of synteny at the apomixis locus in Paspalum spp.

Authors:  F Pupilli; E J Martinez; A Busti; O Calderini; C L Quarin; S Arcioni
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  9 in total

Review 1.  Harnessing apomictic reproduction in grasses: what we have learned from Paspalum.

Authors:  Juan Pablo A Ortiz; Camilo L Quarin; Silvina C Pessino; Carlos Acuña; Eric J Martínez; Francisco Espinoza; Diego H Hojsgaard; Maria E Sartor; Maria E Cáceres; Fulvio Pupilli
Journal:  Ann Bot       Date:  2013-07-17       Impact factor: 4.357

2.  The Auxin-Response Repressor IAA30 Is Down-Regulated in Reproductive Tissues of Apomictic Paspalum notatum.

Authors:  Lorena Adelina Siena; Celeste Antonela Azzaro; Maricel Podio; Juliana Stein; Olivier Leblanc; Silvina Claudia Pessino; Juan Pablo Amelio Ortiz
Journal:  Plants (Basel)       Date:  2022-05-31

3.  Sequence characterization, in silico mapping and cytosine methylation analysis of markers linked to apospory in Paspalum notatum.

Authors:  Maricel Podio; María P Rodríguez; Silvina Felitti; Juliana Stein; Eric J Martínez; Lorena A Siena; Camilo L Quarin; Silvina C Pessino; Juan Pablo A Ortiz
Journal:  Genet Mol Biol       Date:  2012-11-09       Impact factor: 1.771

4.  Transient Activation of Apomixis in Sexual Neotriploids May Retain Genomically Altered States and Enhance Polyploid Establishment.

Authors:  Diego Hojsgaard
Journal:  Front Plant Sci       Date:  2018-02-26       Impact factor: 5.753

5.  Sexual modulation in a polyploid grass: a reproductive contest between environmentally inducible sexual and genetically dominant apomictic pathways.

Authors:  Piyal Karunarathne; Anna V Reutemann; Mara Schedler; Adriana Glücksberg; Eric J Martínez; Ana I Honfi; Diego H Hojsgaard
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6.  In Silico and Fluorescence In Situ Hybridization Mapping Reveals Collinearity between the Pennisetum squamulatum Apomixis Carrier-Chromosome and Chromosome 2 of Sorghum and Foxtail Millet.

Authors:  Sirjan Sapkota; Joann A Conner; Wayne W Hanna; Bindu Simon; Kevin Fengler; Stéphane Deschamps; Mark Cigan; Peggy Ozias-Akins
Journal:  PLoS One       Date:  2016-03-31       Impact factor: 3.240

7.  A reference floral transcriptome of sexual and apomictic Paspalum notatum.

Authors:  Juan Pablo A Ortiz; Santiago Revale; Lorena A Siena; Maricel Podio; Luciana Delgado; Juliana Stein; Olivier Leblanc; Silvina C Pessino
Journal:  BMC Genomics       Date:  2017-04-21       Impact factor: 3.969

8.  Apomixis Technology: Separating the Wheat from the Chaff.

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Journal:  Genes (Basel)       Date:  2020-04-10       Impact factor: 4.096

Review 9.  How to Become an Apomixis Model: The Multifaceted Case of Paspalum.

Authors:  Juan Pablo A Ortiz; Fulvio Pupilli; Carlos A Acuña; Olivier Leblanc; Silvina C Pessino
Journal:  Genes (Basel)       Date:  2020-08-21       Impact factor: 4.096

  9 in total

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