Phylogenetic relationships of sucrose transporters (SUTs) in plants and genome-wide characterization of SUT genes in Orchidaceae reveal roles in floral organ development

被引:10
作者
Wang, Yunzhu [1 ]
Chen, Yue [1 ]
Wei, Qingzhen [2 ]
Wan, Hongjian [2 ]
Sun, Chongbo [1 ]
机构
[1] Zhejiang Acad Agr Sci, Inst Hort Res, Hangzhou, Peoples R China
[2] Zhejiang Acad Agr Sci, Inst Vegetable Res, Hangzhou, Peoples R China
来源
PEERJ | 2021年 / 9卷
基金
中国国家自然科学基金;
关键词
Sucrose transporters; Orchidaceae; Gene family; Water-soluble sugar content; Gene expression; EXPRESSION ANALYSIS; MOLECULAR-CLONING; EPIPHYTIC ORCHID; SIEVE ELEMENTS; SUGAR; FAMILY; CARRIER; IDENTIFICATION; LOCALIZATION; DENDROBIUM;
D O I
10.7717/peerj.11961
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Sucrose is the primary form of photosynthetically produced carbohydrates transported long distance in many plant species and substantially affects plant growth, development and physiology. Sucrose transporters (SUTs or SUCs) are a group of membrane proteins that play vital roles in mediating sucrose allocation within cells and at the whole-plant level. In this study, we investigated the relationships among SUTs in 24 representative plant species and performed an analysis of SUT genes in three sequenced Orchidaceae species: Dendrobium officinale, Phalaenopsis equestris, and Apostasia shenzhenica. All the SUTs from the 24 plant species were classified into three groups and five subgroups, subgroups A, B1, B2.1, B2.2, and C, based on their evolutionary relationships. A total of 22 SUT genes were identified among Orchidaceae species, among which D. officinale had 8 genes (DoSUT01-08), P. equestris had eight genes (PeqSUT01-08) and A. shenzhenica had 6 genes (AsSUT01-06). For the 22 OrchidaceaeSUTs, subgroups A, B2.2 and C contained three genes, whereas the SUT genes were found to have significantly expanded in the monocot-specific subgroup B2.1, which contained 12 genes. To understand sucrose partitioning and the functions of sucrose transporters in Orchidaceae species, we analyzed the water-soluble sugar content and performed RNA sequencing of different tissues of D. officinale, including leaves, stems, flowers and roots. The results showed that although the total content of water-soluble polysaccharides was highest in the stems of D. officinale, the sucrose content was highest in the flowers. Moreover, gene expression analysis showed that most of the DoSUTs were expressed in the flowers, among which DoSUT01,DoSUT07 and DoSUT06 had significantly increased expression levels. These results indicated that stems are used as the main storage sinks for photosynthetically produced sugar in D. officinale and that DoSUTs mainly function in the cellular machinery and development of floral organs. Our findings provide valuable information on sucrose partitioning and the evolution and functions of SUT genes in Orchidaceae and other species.
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页数:24
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共 75 条
  • [1] Expression and localisation analysis of the wheat sucrose transporter TaSUT1 in vegetative tissues
    Aoki, N
    Scofield, GN
    Wang, XD
    Patrick, JW
    Offler, CE
    Furbank, RT
    [J]. PLANTA, 2004, 219 (01) : 176 - 184
  • [2] The sucrose transporter gene family in rice
    Aoki, N
    Hirose, T
    Scofield, GN
    Whitfeld, PR
    Furbank, RT
    [J]. PLANT AND CELL PHYSIOLOGY, 2003, 44 (03) : 223 - 232
  • [3] Sucrose Transporter ZmSut1 Expression and Localization Uncover New Insights into Sucrose Phloem Loading
    Baker, R. Frank
    Leach, Kristen A.
    Boyer, Nathanial R.
    Swyers, Michael J.
    Benitez-Alfonso, Yoselin
    Skopelitis, Tara
    Luo, Anding
    Sylvester, Anne
    Jackson, David
    Braun, David M.
    [J]. PLANT PHYSIOLOGY, 2016, 172 (03) : 1876 - 1898
  • [4] SUT2, a putative sucrose sensor in sieve elements
    Barker, L
    Kühn, C
    Weise, A
    Schulz, A
    Gebhardt, C
    Hirner, B
    Hellmann, H
    Schulze, W
    Ward, JM
    Frommer, WB
    [J]. PLANT CELL, 2000, 12 (07) : 1153 - 1164
  • [5] PmSUC3:: Characterization of a SUT2/SUC3-type sucrose transporter from Plantago major
    Barth, I
    Meyer, S
    Sauer, N
    [J]. PLANT CELL, 2003, 15 (06) : 1375 - 1385
  • [6] Sucrose accumulation in sweet sorghum stems occurs by apoplasmic phloem unloading and does not involve differential Sucrose transporter expression
    Bihmidine, Saadia
    Baker, R. Frank
    Hoffner, Cassandra
    Braun, David M.
    [J]. BMC PLANT BIOLOGY, 2015, 15
  • [7] Genetic Control of Carbon Partitioning in Grasses: Roles of Sucrose Transporters and Tie-dyed Loci in Phloem Loading
    Braun, David M.
    Slewinski, Thomas L.
    [J]. PLANT PHYSIOLOGY, 2009, 149 (01) : 71 - 81
  • [8] PROTON-COUPLED SUGAR AND AMINO-ACID TRANSPORTERS IN PLANTS
    BUSH, DR
    [J]. ANNUAL REVIEW OF PLANT PHYSIOLOGY AND PLANT MOLECULAR BIOLOGY, 1993, 44 : 513 - 542
  • [9] The genome sequence of the orchid Phalaenopsis equestris
    Cai, Jing
    Liu, Xin
    Vanneste, Kevin
    Proost, Sebastian
    Tsai, Wen-Chieh
    Liu, Ke-Wei
    Chen, Li-Jun
    He, Ying
    Xu, Qing
    Bian, Chao
    Zheng, Zhijun
    Sun, Fengming
    Liu, Weiqing
    Hsiao, Yu-Yun
    Pan, Zhao-Jun
    Hsu, Chia-Chi
    Yang, Ya-Ping
    Hsu, Yi-Chin
    Chuang, Yu-Chen
    Dievart, Anne
    Dufayard, Jean-Francois
    Xu, Xun
    Wang, Jun-Yi
    Wang, Jun
    Xiao, Xin-Ju
    Zhao, Xue-Min
    Du, Rong
    Zhang, Guo-Qiang
    Wang, Meina
    Su, Yong-Yu
    Xie, Gao-Chang
    Liu, Guo-Hui
    Li, Li-Qiang
    Huang, Lai-Qiang
    Luo, Yi-Bo
    Chen, Hong-Hwa
    Van de Peer, Yves
    Liu, Zhong-Jian
    [J]. NATURE GENETICS, 2015, 47 (01) : 65 - +
  • [10] De novo transcriptome analysis in Dendrobium and identification of critical genes associated with flowering
    Chen, Yue
    Shen, Qi
    Lin, Renan
    Zhao, Zhuangliu
    Shen, Chenjia
    Sun, Chongbo
    [J]. PLANT PHYSIOLOGY AND BIOCHEMISTRY, 2017, 119 : 319 - 327