Literature DB >> 35695919

Genetic and transcriptomic dissection of an artificially induced paired spikelets mutant of wheat (Triticum aestivum L.).

Juanyu Zhang1,2, Yanyan Tang1, Xi Pu1, Xuebing Qiu1, Jinhui Wang1, Tao Li1, Zhao Yang1,2, Yao Zhou3, Yuxiao Chang3, Junjun Liang1, Haili Zhang1, Guangbing Deng1, Hai Long4.   

Abstract

KEY MESSAGE: Morphological, genetic and transcriptomic characterizations of an EMS-induced wheat paired spikelets (PS) mutant were performed. A novel qualitative locus WPS1 on chromosome 1D was identified. Grain yield of wheat is significantly associated with inflorescence or spike architecture. However, few genes related to wheat spike development have been identified and their underlying mechanisms are largely unknown. In this study, we characterized an ethyl methanesulfonate (EMS)-induced wheat mutant, wheat paired spikelets 1 (wps1). Unlike a single spikelet that usually develops at each node of rachis, a secondary spikelet appeared below the primary spikelet at most of the rachis nodes of wps1. The microscope observation showed that the secondary spikelet initiated later than the primary spikelet. Genetic analysis suggested that the PS of wps1 is controlled by a single dominant nuclear gene, designated WHEAT PAIRED SPIKELETS 1 (WPS1). Further RNA-seq based bulked segregant analysis and molecular marker mapping localized WPS1 in an interval of 208.18-220.92 Mb on the chromosome arm 1DL, which is different to known genes related to spike development in wheat. By using wheat omics data, TraesCS1D02G155200 encoding a HD-ZIP III transcription factor was considered as a strong candidate gene for WPS1. Transcriptomic analysis indicated that PS formation in wps1 is associated with auxin-related pathways and may be regulated by networks involving TB1, Ppd1, FT1, VRN1, etc. This study laid the solid foundation for further validation of the causal gene of WPS1 and explored its regulatory mechanism in PS formation and inflorescence development, which may benefit to kernel yield improvement of wheat based on optimization or design of spike architecture in the future.
© 2022. The Author(s), under exclusive licence to Springer-Verlag GmbH Germany, part of Springer Nature.

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Year:  2022        PMID: 35695919     DOI: 10.1007/s00122-022-04137-5

Source DB:  PubMed          Journal:  Theor Appl Genet        ISSN: 0040-5752            Impact factor:   5.574


  45 in total

1.  FRIZZY PANICLE drives supernumerary spikelets in bread wheat.

Authors:  Oxana Dobrovolskaya; Caroline Pont; Richard Sibout; Petr Martinek; Ekaterina Badaeva; Florent Murat; Audrey Chosson; Nobuyoshi Watanabe; Elisa Prat; Nadine Gautier; Véronique Gautier; Charles Poncet; Yuriy L Orlov; Alexander A Krasnikov; Hélène Bergès; Elena Salina; Lyudmila Laikova; Jerome Salse
Journal:  Plant Physiol       Date:  2014-11-14       Impact factor: 8.340

2.  Radial patterning of Arabidopsis shoots by class III HD-ZIP and KANADI genes.

Authors:  John F Emery; Sandra K Floyd; John Alvarez; Yuval Eshed; Nathaniel P Hawker; Anat Izhaki; Stuart F Baum; John L Bowman
Journal:  Curr Biol       Date:  2003-10-14       Impact factor: 10.834

Review 3.  Mechanism of auxin-regulated gene expression in plants.

Authors:  Elisabeth J Chapman; Mark Estelle
Journal:  Annu Rev Genet       Date:  2009       Impact factor: 16.830

4.  Fast and sensitive protein alignment using DIAMOND.

Authors:  Benjamin Buchfink; Chao Xie; Daniel H Huson
Journal:  Nat Methods       Date:  2014-11-17       Impact factor: 28.547

5.  TEOSINTE BRANCHED1 Regulates Inflorescence Architecture and Development in Bread Wheat (Triticum aestivum).

Authors:  Laura E Dixon; Julian R Greenwood; Stefano Bencivenga; Peng Zhang; James Cockram; Gregory Mellers; Kerrie Ramm; Colin Cavanagh; Steve M Swain; Scott A Boden
Journal:  Plant Cell       Date:  2018-02-14       Impact factor: 11.277

6.  FRIZZY PANICLE defines a regulatory hub for simultaneously controlling spikelet formation and awn elongation in bread wheat.

Authors:  Dejie Du; Dongxue Zhang; Jun Yuan; Man Feng; Zhaoju Li; Zihao Wang; Zhaoheng Zhang; Xiongtao Li; Wensheng Ke; Renhan Li; Zhaoyan Chen; Lingling Chai; Zhaorong Hu; Weilong Guo; Jiewen Xing; Zhenqi Su; Huiru Peng; Mingming Xin; Yingyin Yao; Qixin Sun; Jie Liu; Zhongfu Ni
Journal:  New Phytol       Date:  2021-05-08       Impact factor: 10.151

7.  Cell signalling by microRNA165/6 directs gene dose-dependent root cell fate.

Authors:  Annelie Carlsbecker; Ji-Young Lee; Christina J Roberts; Jan Dettmer; Satu Lehesranta; Jing Zhou; Ove Lindgren; Miguel A Moreno-Risueno; Anne Vatén; Siripong Thitamadee; Ana Campilho; Jose Sebastian; John L Bowman; Ykä Helariutta; Philip N Benfey
Journal:  Nature       Date:  2010-04-21       Impact factor: 49.962

8.  A pseudo-response regulator is misexpressed in the photoperiod insensitive Ppd-D1a mutant of wheat (Triticum aestivum L.).

Authors:  James Beales; Adrian Turner; Simon Griffiths; John W Snape; David A Laurie
Journal:  Theor Appl Genet       Date:  2007-07-19       Impact factor: 5.699

9.  Genes WHEAT FRIZZY PANICLE and SHAM RAMIFICATION 2 independently regulate differentiation of floral meristems in wheat.

Authors:  Oxana B Dobrovolskaya; Yumiko Amagai; Karina I Popova; Alina E Dresvyannikova; Petr Martinek; Alexander A Krasnikov; Nobuyoshi Watanabe
Journal:  BMC Plant Biol       Date:  2017-12-28       Impact factor: 4.215

10.  SpeedSeq: ultra-fast personal genome analysis and interpretation.

Authors:  Colby Chiang; Ryan M Layer; Gregory G Faust; Michael R Lindberg; David B Rose; Erik P Garrison; Gabor T Marth; Aaron R Quinlan; Ira M Hall
Journal:  Nat Methods       Date:  2015-08-10       Impact factor: 28.547

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