Literature DB >> 21928114

Identification and characterization of SHORTENED UPPERMOST INTERNODE 1, a gene negatively regulating uppermost internode elongation in rice.

Li Zhu1, Jiang Hu, Keming Zhu, Yunxia Fang, Zhenyu Gao, Yinghong He, Guangheng Zhang, Longbiao Guo, Dali Zeng, Guojun Dong, Meixian Yan, Jian Liu, Qian Qian.   

Abstract

In rice, the elongated internodes are derived from the vegetative shoot apical meristem (SAM), and the transition of the SAM from the vegetative to the reproductive stage induces internode elongation. In this study, we characterize two shortened uppermost internode mutants (sui1-1 and sui1-2). During the seedling and tillering stages, sui1 plants are morphologically similar to wild-type plants. However, at the heading stage, the sui1-1 mutant exhibits a shortened uppermost internode and a partly sheathed panicle, and the sui1-2 mutant shows an extremely shortened uppermost internode and a fully sheathed panicle. Gibberellin treatment results in elongation of every internode, but the shortened uppermost internode phenotype remains unaltered. Microscopic analysis indicates that cell length of sui1-1 uppermost internode exhibits decreased. Map-based cloning revealed that SUI1 is located on Chromosome 1, and encodes a putative phosphatidyl serine synthase (PSS) family protein. Searches for matches in protein databases showed that OsSUI1 contains the InterPro domain IPR004277, which is conserved in both animal and plant kingdoms. Introduction of a wild-type SUI1 gene fully rescued the mutant phenotype of sui1-1 and sui1-2, confirming the identity of the cloned gene. Consistent with these results, the SUI1-RNAi transgenic plants displayed decreased elongation of the uppermost internode. Our results suggest that SUI1 plays an important role in regulating uppermost internode length by decreasing longitudinal cell length in rice.

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Year:  2011        PMID: 21928114     DOI: 10.1007/s11103-011-9825-6

Source DB:  PubMed          Journal:  Plant Mol Biol        ISSN: 0167-4412            Impact factor:   4.076


  31 in total

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Journal:  Plant Cell Physiol       Date:  2005-11-23       Impact factor: 4.927

4.  Genome-wide classification and evolutionary analysis of the bHLH family of transcription factors in Arabidopsis, poplar, rice, moss, and algae.

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7.  PHOSPHATIDYLSERINE SYNTHASE1 is required for microspore development in Arabidopsis thaliana.

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  17 in total

1.  Overexpression of phosphatidylserine synthase IbPSS1 affords cellular Na+ homeostasis and salt tolerance by activating plasma membrane Na+/H+ antiport activity in sweet potato roots.

Authors:  Yicheng Yu; Ying Xuan; Xiaofeng Bian; Lei Zhang; Zhiyuan Pan; Meng Kou; Qinghe Cao; Zhonghou Tang; Qiang Li; Daifu Ma; Zongyun Li; Jian Sun
Journal:  Hortic Res       Date:  2020-08-01       Impact factor: 6.793

2.  Overexpression of phosphatidylserine synthase IbPSS1 affords cellular Na+ homeostasis and salt tolerance by activating plasma membrane Na+/H+ antiport activity in sweet potato roots.

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5.  Phosphatidylserine Synthase Controls Cell Elongation Especially in the Uppermost Internode in Rice by Regulation of Exocytosis.

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8.  Functional Inactivation of Putative Photosynthetic Electron Acceptor Ferredoxin C2 (FdC2) Induces Delayed Heading Date and Decreased Photosynthetic Rate in Rice.

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9.  Genome-Wide Analysis of japonica Rice Performance under Limited Water and Permanent Flooding Conditions.

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10.  Knocking Out the Gene RLS1 Induces Hypersensitivity to Oxidative Stress and Premature Leaf Senescence in Rice.

Authors:  Guang Chen; Chao Wu; Lei He; Zhennan Qiu; Sen Zhang; Yu Zhang; Longbiao Guo; Dali Zeng; Jiang Hu; Deyong Ren; Qian Qian; Li Zhu
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