Literature DB >> 27325523

Engineering the 1BS chromosome arm in wheat to remove the Rf (multi) locus restoring male fertility in cytoplasms of Aegilops kotschyi, Ae. uniaristata and Ae. mutica.

Christopher E Hohn1, Adam J Lukaszewski2.   

Abstract

KEY MESSAGE: By removing the Rf (multi) locus from chromosome 1BS of wheat via chromosome engineering we were able to generate a resource for the production of male sterile wheats in three new cytoplasms. Cytoplasmic male sterility is an essential component in the development of many hybrid crops. In wheat (Triticum aestivum L.) only the cytoplasm of T. timopheevi cytoplasm has been extensively tested even though many other cytoplasms are also known to produce male sterility. Among them are the cytoplasms of Ae. kotschyi, Ae. uniaristata and Ae. mutica but here male sterility manifests itself only when the 1RS.1BL rye-wheat translocation is present in the nuclear genome. The location of the male fertility restoring gene on the chromosome arm 1BS (Rf (multi) ) has recently been determined using a set of primary recombinants of chromosome arms 1RS with 1BS. Using this knowledge the same recombinants were used to create chromosome arm 1BS in wheat with a small insert from rye that removes the restorer locus. The disomic engineered chromosome 1B1:6 assures male sterility in all three cytoplasms and any standard chromosome 1B in wheat is capable of restoring it. This newly engineered chromosome in combination with the three cytoplasms of Aegilops sp extends the range of possibilities in attempts to create a viable system for hybrid wheat production.

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Year:  2016        PMID: 27325523     DOI: 10.1007/s00122-016-2738-7

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


  3 in total

1.  Fine mapping of the first multi-fertility-restoring gene, Rf(multi), of wheat for three Aegilops plasmons, using 1BS-1RS recombinant lines.

Authors:  Koichiro Tsunewaki
Journal:  Theor Appl Genet       Date:  2015-02-12       Impact factor: 5.699

2.  Transfer of rye chromosome segments to wheat by a gametocidal system.

Authors:  A Masoudi-Nejad; S Nasuda; R A McIntosh; T R Endo
Journal:  Chromosome Res       Date:  2002       Impact factor: 4.620

3.  Integrated genetic map and genetic analysis of a region associated with root traits on the short arm of rye chromosome 1 in bread wheat.

Authors:  Sundrish Sharma; Prasanna R Bhat; Bahman Ehdaie; Timothy J Close; Adam J Lukaszewski; J Giles Waines
Journal:  Theor Appl Genet       Date:  2009-06-21       Impact factor: 5.699

  3 in total
  5 in total

Review 1.  Hybrid wheat: past, present and future.

Authors:  Pushpendra Kumar Gupta; Harindra Singh Balyan; Vijay Gahlaut; Gautam Saripalli; Bijendra Pal; Bhoja Raj Basnet; Arun Kumar Joshi
Journal:  Theor Appl Genet       Date:  2019-07-18       Impact factor: 5.699

2.  Genetic architecture of male fertility restoration of Triticum timopheevii cytoplasm and fine-mapping of the major restorer locus Rf3 on chromosome 1B.

Authors:  Tobias Würschum; Willmar L Leiser; Sigrid Weissmann; Hans Peter Maurer
Journal:  Theor Appl Genet       Date:  2017-03-21       Impact factor: 5.699

3.  Chromosomes 1BS and 1RS for control of male fertility in wheats and triticales with cytoplasms of Aegilops kotschyi, Ae. mutica and Ae. uniaristata.

Authors:  Adam J Lukaszewski
Journal:  Theor Appl Genet       Date:  2017-08-23       Impact factor: 5.699

4.  Cyclin-Dependent Kinase Inhibitor Gene TaICK1 acts as a Potential Contributor to Wheat Male Sterility induced by a Chemical Hybridizing Agent.

Authors:  Lili Zhang; Chaojie Wang; Yongang Yu; Yamin Zhang; Yulong Song; Zheng Li; Shuping Wang; Yanfang Zhang; Xiaofeng Guo; Dan Liu; Ziliang Li; Shoucai Ma; Jinjuan Zheng; Huiyan Zhao; Gaisheng Zhang
Journal:  Int J Mol Sci       Date:  2020-04-02       Impact factor: 5.923

5.  Chromosome-scale genome assembly provides insights into rye biology, evolution and agronomic potential.

Authors:  M Timothy Rabanus-Wallace; Bernd Hackauf; Martin Mascher; Thomas Lux; Thomas Wicker; Heidrun Gundlach; Mariana Baez; Andreas Houben; Klaus F X Mayer; Liangliang Guo; Jesse Poland; Curtis J Pozniak; Sean Walkowiak; Joanna Melonek; Coraline R Praz; Mona Schreiber; Hikmet Budak; Matthias Heuberger; Burkhard Steuernagel; Brande Wulff; Andreas Börner; Brook Byrns; Jana Čížková; D Brian Fowler; Allan Fritz; Axel Himmelbach; Gemy Kaithakottil; Jens Keilwagen; Beat Keller; David Konkin; Jamie Larsen; Qiang Li; Beata Myśków; Sudharsan Padmarasu; Nidhi Rawat; Uğur Sesiz; Sezgi Biyiklioglu-Kaya; Andy Sharpe; Hana Šimková; Ian Small; David Swarbreck; Helena Toegelová; Natalia Tsvetkova; Anatoly V Voylokov; Jan Vrána; Eva Bauer; Hanna Bolibok-Bragoszewska; Jaroslav Doležel; Anthony Hall; Jizeng Jia; Viktor Korzun; André Laroche; Xue-Feng Ma; Frank Ordon; Hakan Özkan; Monika Rakoczy-Trojanowska; Uwe Scholz; Alan H Schulman; Dörthe Siekmann; Stefan Stojałowski; Vijay K Tiwari; Manuel Spannagl; Nils Stein
Journal:  Nat Genet       Date:  2021-03-18       Impact factor: 38.330

  5 in total

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