Literature DB >> 23553451

Recombination within the apospory specific genomic region leads to the uncoupling of apomixis components in Cenchrus ciliaris.

Joann A Conner1, Gunawati Gunawan, Peggy Ozias-Akins.   

Abstract

Apomixis enables the clonal propagation of maternal genotypes through seed. If apomixis could be harnessed via genetic engineering or introgression, it would have a major economic impact for agricultural crops. In the grass species Pennisetum squamulatum and Cenchrus ciliaris (syn. P. ciliare), apomixis is controlled by a single dominant "locus", the apospory-specific genomic region (ASGR). For P. squamulatum, 18 published sequenced characterized amplified region (SCAR) markers have been identified which always co-segregate with apospory. Six of these markers are conserved SCARs in the closely related species, C. ciliaris and co-segregate with the trait. A screen of progeny from a cross of sexual × apomictic C. ciliaris genotypes identified a plant, A8, retaining two of the six ASGR-linked SCAR markers. Additional and newly identified ASGR-linked markers were generated to help identify the extent of recombination within the ASGR. Based on analysis of missing markers, the A8 recombinant plant has lost a significant portion of the ASGR but continues to form aposporous embryo sacs. Seedlings produced from aposporous embryo sacs are 6× in ploidy level and hence the A8 recombinant does not express parthenogenesis. The recombinant A8 plant represents a step forward in reducing the complexity of the ASGR locus to determine the factor(s) required for aposporous embryo sac formation and documents the separation of expression of the two components of apomixis in C. ciliaris.

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Year:  2013        PMID: 23553451     DOI: 10.1007/s00425-013-1873-5

Source DB:  PubMed          Journal:  Planta        ISSN: 0032-0935            Impact factor:   4.116


  22 in total

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

Authors:  D Grimanelli; O Leblanc; E Espinosa; E Perotti; D González de León; Y Savidan
Journal:  Heredity (Edinb)       Date:  1998-01       Impact factor: 3.821

2.  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

3.  An AFLP marker tightly linked to apomixis reveals hemizygosity in a portion of the apomixis-controlling locus in Paspalum simplex.

Authors:  Paola Labombarda; Alessandra Busti; Maria Eugenia Caceres; Fulvio Pupilli; Sergio Arcioni
Journal:  Genome       Date:  2002-06       Impact factor: 2.166

4.  High-resolution physical mapping reveals that the apospory-specific genomic region (ASGR) in Cenchrus ciliaris is located on a heterochromatic and hemizygous region of a single chromosome.

Authors:  Yukio Akiyama; Wayne W Hanna; Peggy Ozias-Akins
Journal:  Theor Appl Genet       Date:  2005-10-11       Impact factor: 5.699

5.  Two independent loci control agamospermy (Apomixis) in the triploid flowering plant Erigeron annuus.

Authors:  R D Noyes; L H Rieseberg
Journal:  Genetics       Date:  2000-05       Impact factor: 4.562

6.  Identification and genetic analysis of the APOSPORY locus in Hypericum perforatum L.

Authors:  Anna Schallau; Francesco Arzenton; Amal J Johnston; Urs Hähnel; David Koszegi; Frank R Blattner; Lothar Altschmied; Georg Haberer; Gianni Barcaccia; Helmut Bäumlein
Journal:  Plant J       Date:  2010-02-26       Impact factor: 6.417

7.  Short Communication: An apospory-specific genomic region is conserved between Buffelgrass (Cenchrus ciliaris L.) and Pennisetum squamulatum Fresen.

Authors: 
Journal:  Plant J       Date:  1999-07       Impact factor: 6.417

8.  Comparative physical mapping of the apospory-specific genomic region in two apomictic grasses: Pennisetum squamulatum and Cenchrus ciliaris.

Authors:  Shailendra Goel; Zhenbang Chen; Yukio Akiyama; Joann A Conner; Manojit Basu; Gustavo Gualtieri; Wayne W Hanna; Peggy Ozias-Akins
Journal:  Genetics       Date:  2006-03-17       Impact factor: 4.562

9.  Molecular cytogenetics and DNA sequence analysis of an apomixis-linked BAC in Paspalum simplex reveal a non pericentromere location and partial microcolinearity with rice.

Authors:  Ornella Calderini; Song B Chang; Hans de Jong; Alessandra Busti; Francesco Paolocci; Sergio Arcioni; Sacco C de Vries; Marleen H C Abma-Henkens; Renè M Klein Lankhorst; Iain S Donnison; Fulvio Pupilli
Journal:  Theor Appl Genet       Date:  2006-02-07       Impact factor: 5.699

10.  High-resolution physical mapping in Pennisetum squamulatum reveals extensive chromosomal heteromorphism of the genomic region associated with apomixis.

Authors:  Yukio Akiyama; Joann A Conner; Shailendra Goel; Daryl T Morishige; John E Mullet; Wayne W Hanna; Peggy Ozias-Akins
Journal:  Plant Physiol       Date:  2004-04-02       Impact factor: 8.340

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  17 in total

Review 1.  The genetic control of apomixis: asexual seed formation.

Authors:  Melanie L Hand; Anna M G Koltunow
Journal:  Genetics       Date:  2014-06       Impact factor: 4.562

2.  Alien genome mobilization and fixation utilizing an apomixis mediated genome addition (AMGA) strategy in Pennisetum to improve domestication traits of P. squamulatum.

Authors:  A K Roy; M Chakraborti; A Radhakrishna; K K Dwivedi; M K Srivastava; S Saxena; S Paul; Aarti Khare; D R Malaviya; P Kaushal
Journal:  Theor Appl Genet       Date:  2022-06-20       Impact factor: 5.574

3.  A parthenogenesis gene of apomict origin elicits embryo formation from unfertilized eggs in a sexual plant.

Authors:  Joann A Conner; Muruganantham Mookkan; Heqiang Huo; Keun Chae; Peggy Ozias-Akins
Journal:  Proc Natl Acad Sci U S A       Date:  2015-08-24       Impact factor: 11.205

Review 4.  Apomixis in plant reproduction: a novel perspective on an old dilemma.

Authors:  Gianni Barcaccia; Emidio Albertini
Journal:  Plant Reprod       Date:  2013-07-14       Impact factor: 3.767

5.  De novo transcriptome sequencing and assembly from apomictic and sexual Eragrostis curvula genotypes.

Authors:  Ingrid Garbus; José Rodolfo Romero; Juan Pablo Selva; María Cielo Pasten; Carolina Chinestra; José Carballo; Diego Carlos Zappacosta; Viviana Echenique
Journal:  PLoS One       Date:  2017-11-01       Impact factor: 3.240

6.  Apomixis frequency under stress conditions in weeping lovegrass (Eragrostis curvula).

Authors:  Juan Manuel Rodrigo; Diego Carlos Zappacosta; Juan Pablo Selva; Ingrid Garbus; Emidio Albertini; Viviana Echenique
Journal:  PLoS One       Date:  2017-04-18       Impact factor: 3.240

7.  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

8.  A Parthenogenesis Gene Candidate and Evidence for Segmental Allopolyploidy in Apomictic Brachiaria decumbens.

Authors:  Margaret Worthington; Christopher Heffelfinger; Diana Bernal; Constanza Quintero; Yeny Patricia Zapata; Juan Guillermo Perez; Jose De Vega; John Miles; Stephen Dellaporta; Joe Tohme
Journal:  Genetics       Date:  2016-05-20       Impact factor: 4.562

Review 9.  Seeds of doubt: Mendel's choice of Hieracium to study inheritance, a case of right plant, wrong trait.

Authors:  Ross Bicknell; Andrew Catanach; Melanie Hand; Anna Koltunow
Journal:  Theor Appl Genet       Date:  2016-10-01       Impact factor: 5.699

10.  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

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