Literature DB >> 27241276

N-glycan containing a core α1,3-fucose residue is required for basipetal auxin transport and gravitropic response in rice (Oryza sativa).

Rikno Harmoko1, Jae Yong Yoo1, Ki Seong Ko1, Nirmal Kumar Ramasamy1, Bo Young Hwang1, Eun Ji Lee1, Ho Soo Kim1, Kyung Jin Lee2, Doo-Byoung Oh2, Dool-Yi Kim3, Sanghun Lee4, Yang Li4, Sang Yeol Lee1, Kyun Oh Lee1.   

Abstract

In plants, α1,3-fucosyltransferase (FucT) catalyzes the transfer of fucose from GDP-fucose to asparagine-linked GlcNAc of the N-glycan core in the medial Golgi. To explore the physiological significance of this processing, we isolated two Oryza sativa (rice) mutants (fuct-1 and fuct-2) with loss of FucT function. Biochemical analyses of the N-glycan structure confirmed that α1,3-fucose is missing from the N-glycans of allelic fuct-1 and fuct-2. Compared with the wild-type cv Kitaake, fuct-1 displayed a larger tiller angle, shorter internode and panicle lengths, and decreased grain filling as well as an increase in chalky grains with abnormal shape. The mutant allele fuct-2 gave rise to similar developmental abnormalities, although they were milder than those of fuct-1. Restoration of a normal tiller angle in fuct-1 by complementation demonstrated that the phenotype is caused by the loss of FucT function. Both fuct-1 and fuct-2 plants exhibited reduced gravitropic responses. Expression of the genes involved in tiller and leaf angle control was also affected in the mutants. We demonstrate that reduced basipetal auxin transport and low auxin accumulation at the base of the shoot in fuct-1 account for both the reduced gravitropic response and the increased tiller angle.
© 2016 The Authors. New Phytologist © 2016 New Phytologist Trust.

Entities:  

Keywords:  3-fucosyltransferase; Oryza sativa; auxin transport; glycosylation; gravitropic response; plant development; α1

Mesh:

Substances:

Year:  2016        PMID: 27241276     DOI: 10.1111/nph.14031

Source DB:  PubMed          Journal:  New Phytol        ISSN: 0028-646X            Impact factor:   10.151


  16 in total

1.  Analysis of Protein Glycosylation in the ER.

Authors:  Jennifer Schoberer; Yun-Ji Shin; Ulrike Vavra; Christiane Veit; Richard Strasser
Journal:  Methods Mol Biol       Date:  2018

2.  A Core Regulatory Pathway Controlling Rice Tiller Angle Mediated by the LAZY1-Dependent Asymmetric Distribution of Auxin.

Authors:  Ning Zhang; Hong Yu; Hao Yu; Yueyue Cai; Linzhou Huang; Cao Xu; Guosheng Xiong; Xiangbing Meng; Jiyao Wang; Haofeng Chen; Guifu Liu; Yanhui Jing; Yundong Yuan; Yan Liang; Shujia Li; Steven M Smith; Jiayang Li; Yonghong Wang
Journal:  Plant Cell       Date:  2018-06-18       Impact factor: 11.277

3.  Dwarf and High Tillering1 represses rice tillering through mediating the splicing of D14 pre-mRNA.

Authors:  Tianzhen Liu; Xin Zhang; Huan Zhang; Zhijun Cheng; Jun Liu; Chunlei Zhou; Sheng Luo; Weifeng Luo; Shuai Li; Xinxin Xing; Yanqi Chang; Cuilan Shi; Yulong Ren; Shanshan Zhu; Cailin Lei; Xiuping Guo; Jie Wang; Zhichao Zhao; Haiyang Wang; Huqu Zhai; Qibing Lin; Jianmin Wan
Journal:  Plant Cell       Date:  2022-08-25       Impact factor: 12.085

4.  OsHOX1 and OsHOX28 Redundantly Shape Rice Tiller Angle by Reducing HSFA2D Expression and Auxin Content.

Authors:  Yong Hu; Shuangle Li; Xiaowei Fan; Song Song; Xin Zhou; Xiaoyu Weng; Jinghua Xiao; Xianghua Li; Lizhong Xiong; Aiqing You; Yongzhong Xing
Journal:  Plant Physiol       Date:  2020-09-10       Impact factor: 8.340

5.  Identification and characterization of a core fucosidase from the bacterium Elizabethkingia meningoseptica.

Authors:  Tiansheng Li; Mengjie Li; Linlin Hou; Yameng Guo; Lei Wang; Guiqin Sun; Li Chen
Journal:  J Biol Chem       Date:  2017-12-01       Impact factor: 5.157

6.  Phytochrome-interacting factor-like protein OsPIL15 integrates light and gravitropism to regulate tiller angle in rice.

Authors:  Chuanmiao Xie; Ge Zhang; Lin An; Xiaoying Chen; Rongxiang Fang
Journal:  Planta       Date:  2019-03-29       Impact factor: 4.116

7.  Inactivation of the β (1, 2)-xylosyltransferase and the α (1, 3)-fucosyltransferase gene in rice (Oryza sativa) by multiplex CRISPR/Cas9 strategy.

Authors:  Jae-Wan Jung; Jun-Hye Shin; Won-Kyung Lee; Hilal Begum; Chan-Hong Min; Mi-Hwa Jang; Han-Bin Oh; Moon-Sik Yang; Seong-Ryong Kim
Journal:  Plant Cell Rep       Date:  2021-02-06       Impact factor: 4.570

8.  Integrative RNA- and miRNA-Profile Analysis Reveals a Likely Role of BR and Auxin Signaling in Branch Angle Regulation of B. napus.

Authors:  Hongtao Cheng; Mengyu Hao; Wenxiang Wang; Desheng Mei; Rachel Wells; Jia Liu; Hui Wang; Shifei Sang; Min Tang; Rijin Zhou; Wen Chu; Li Fu; Qiong Hu
Journal:  Int J Mol Sci       Date:  2017-05-08       Impact factor: 5.923

Review 9.  Impact of Post-Translational Modifications of Crop Proteins under Abiotic Stress.

Authors:  Akiko Hashiguchi; Setsuko Komatsu
Journal:  Proteomes       Date:  2016-12-21

10.  Lack of the α1,3-Fucosyltransferase Gene (Osfuct) Affects Anther Development and Pollen Viability in Rice.

Authors:  Joon-Soo Sim; Mahipal Singh Kesawat; Manu Kumar; Su-Yeon Kim; Vimalraj Mani; Parthiban Subramanian; Soyoung Park; Chang-Muk Lee; Seong-Ryong Kim; Bum-Soo Hahn
Journal:  Int J Mol Sci       Date:  2018-04-18       Impact factor: 5.923

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