Literature DB >> 29475897

Time-Course Transcriptomics Analysis Reveals Key Responses of Submerged Deepwater Rice to Flooding.

Anzu Minami1, Kenji Yano2, Rico Gamuyao2, Keisuke Nagai2, Takeshi Kuroha2, Madoka Ayano2, Masanari Nakamori2, Masaya Koike2, Yuma Kondo2, Yoko Niimi2, Keiko Kuwata3, Takamasa Suzuki4,5, Tetsuya Higashiyama4,5,6, Yumiko Takebayashi7, Mikiko Kojima7, Hitoshi Sakakibara7,8, Atsushi Toyoda9, Asao Fujiyama9, Nori Kurata10, Motoyuki Ashikari10, Stefan Reuscher1.   

Abstract

Water submergence is an environmental factor that limits plant growth and survival. Deepwater rice (Oryza sativa) adapts to submergence by rapidly elongating its internodes and thereby maintaining its leaves above the water surface. We performed a comparative RNA sequencing transcriptome analysis of the shoot base region, including basal nodes, internodes, and shoot apices of seedlings at two developmental stages from two varieties with contrasting deepwater growth responses. A transcriptomic comparison between deepwater rice cv C9285 and nondeepwater rice cv Taichung 65 revealed both similar and differential expression patterns between the two genotypes during submergence. The expression of genes related to gibberellin biosynthesis, trehalose biosynthesis, anaerobic fermentation, cell wall modification, and transcription factors that include ethylene-responsive factors was significantly different between the varieties. Interestingly, in both varieties, the jasmonic acid content at the shoot base decreased during submergence, while exogenous jasmonic acid inhibited submergence-induced internode elongation in cv C9285, suggesting that jasmonic acid plays a role in the submergence response of rice. Furthermore, a targeted de novo transcript assembly revealed transcripts that were specific to cv C9285, including submergence-induced biotic stress-related genes. Our multifaceted transcriptome approach using the rice shoot base region illustrates a differential response to submergence between deepwater and nondeepwater rice. Jasmonic acid metabolism appears to participate in the submergence-mediated internode elongation response of deepwater rice.
© 2018 American Society of Plant Biologists. All Rights Reserved.

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Year:  2018        PMID: 29475897      PMCID: PMC5884608          DOI: 10.1104/pp.17.00858

Source DB:  PubMed          Journal:  Plant Physiol        ISSN: 0032-0889            Impact factor:   8.340


  140 in total

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Journal:  Plant Physiol       Date:  2012-11-14       Impact factor: 8.340

4.  The regulation of cell wall extensibility during shade avoidance: a study using two contrasting ecotypes of Stellaria longipes.

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Authors:  Joris J Benschop; Jordi Bou; Anton J M Peeters; Niels Wagemaker; Kerstin Gühl; Dennis Ward; Peter Hedden; Thomas Moritz; Laurentius A C J Voesenek
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9.  Two novel QTLs regulate internode elongation in deepwater rice during the early vegetative stage.

Authors:  Keisuke Nagai; Takeshi Kuroha; Madoka Ayano; Yusuke Kurokawa; Rosalyn B Angeles-Shim; Jung-Hyun Shim; Hideshi Yasui; Atsushi Yoshimura; Motoyuki Ashikari
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2.  Integrated Transcriptomic and Proteomic Analyses Uncover the Regulatory Mechanisms of Myricaria laxiflora Under Flooding Stress.

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Authors:  Vrushali Patil; Hannah I McDermott; Trisha McAllister; Michael Cummins; Joana C Silva; Ewan Mollison; Rowan Meikle; Jenny Morris; Pete E Hedley; Robbie Waugh; Christoph Dockter; Mats Hansson; Sarah M McKim
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5.  Identification of Genes/Proteins Related to Submergence Tolerance by Transcriptome and Proteome Analyses in Soybean.

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6.  A Comprehensive Transcriptomics Analysis Reveals Long Non-Coding RNA to be Involved in the Key Metabolic Pathway in Response to Waterlogging Stress in Maize.

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7.  Transcriptomic, proteomic, and physiological comparative analyses of flooding mitigation of the damage induced by low-temperature stress in direct seeded early indica rice at the seedling stage.

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