Transcriptome and metabolome profiling of unheading in F1 hybrid rice

被引:2
|
作者
Wang Jie [1 ,2 ]
Wei Shao-bo [1 ]
Wang Chun-Chao [1 ]
Khan, Najeeb Ullah [2 ]
Zhang Zhan-ying [2 ]
Wang Wen-sheng [1 ]
Zhao Xiu-qin [1 ]
Zhang Hong-liang [2 ]
Li Zi-chao [2 ]
Gao Yong-ming [1 ]
机构
[1] Chinese Acad Agr Sci, Inst Crop Sci, Natl Key Facil Crop Gene Resources & Genet Improv, Beijing 100081, Peoples R China
[2] China Agr Univ, Coll Agron & Biotechnol, Key Lab Crop Genet Improvement Beijing Municipal, Key Lab Crop Heterosis & Utilizat,Minist Educ, Beijing 100193, Peoples R China
关键词
F-1 hybrid rice; unheading; transcriptome profiles; metabolome profiles; QUANTITATIVE TRAIT LOCUS; FLOWERING TIME; PHOTOPERIOD SENSITIVITY; HEADING DATE; NATURAL VARIATION; CIRCADIAN CLOCK; GENE-EXPRESSION; ARABIDOPSIS; PHYTOCHROME; GLUTATHIONE;
D O I
10.1016/S2095-3119(19)62838-8
中图分类号
S [农业科学];
学科分类号
09 ;
摘要
Heading date is a crucial agronomic trait. However, rice usually delays heading due to the photoperiod, temperature, hormones or age. The present research was conducted to analyze the mechanism controlling heading date in F-1 hybrid rice. We constructed two test-crossing populations using two introgression lines (ILs), P20 and P21 coming from SH527/FH838 as the male parent, respectively, and male sterile line Jin23A as the female parent. Meanwhile, the F, hybrids of H20, obtained by mating P20 with Jin23A and having no heading, and H21, from the crossing between P21 and Jin23A having normal heading, were both observed under long days. Here, we analyzed the photoperiodic response of F, hybrids by transcriptome and metabolome profiling. The greater differences displayed in the transcriptome and the metabolome were caused by photoperiod (exogenous) instead of genes (endogenous). The coping mechanism resulted from long days (LD) in H20, leading to differences in the circadian rhythm and glutathione metabolism relative to other samples. The circadian oscillator and GSH/GSSG cycle typically regulate ROS homeostasis, and both of them are responsible for modulating ROS in H20 under LD condition. Both circadian rhythm genes and the reported genes related to heading date function via the DHD1/OsMFT1-Ehd1-RFT1-OsMADS14/OsMADS18 pathway and the glutathione metabolism pathway by regulating oxidative reduction processes. Both pathways are involved in the heading process and they interacted through the oxidative reduction process which was induced by photoperiod regulation, and all of them collectively modulated the heading process. The results of this study will be helpful for unraveling the mechanism of F-1 hybrid responses to unheading under LD condition.
引用
收藏
页码:2367 / 2382
页数:16
相关论文
共 50 条
  • [31] Transcriptome and metabolome profiling unveil the accumulation of flavonoids in Dendrobium officinale
    Yuan, Yingdan
    Zuo, Jiajia
    Zhang, Hanyue
    Zu, Mengting
    Yu, Maoyun
    Liu, Sian
    GENOMICS, 2022, 114 (03)
  • [32] Characterization of human bone marrow niches with metabolome and transcriptome profiling
    Ayhan, Selda
    Nemutlu, Emirhan
    Cetinkaya, Duygu Uckan
    Kir, Sedef
    Ozgul, Riza Koksal
    JOURNAL OF CELL SCIENCE, 2021, 134 (06)
  • [33] Transcriptome and metabolome profiling unveil the responses of crayfish to dietary astaxanthin
    Zhao, Zaoya
    Zhou, Yueqi
    Zou, Qianxing
    Qin, Junqi
    Yang, Fei
    Ou, Yecheng
    Lin, Yong
    Yi, Yi
    AQUACULTURE REPORTS, 2023, 33
  • [34] Transcriptome profiling of two super hybrid rice provides insights into the genetic basis of heterosis
    Jun Fu
    Yilin Zhang
    Tianze Yan
    Yanfeng Li
    Nan Jiang
    Yanbiao Zhou
    Qunfeng Zhou
    Peng Qin
    Chenjian Fu
    Haiyan Lin
    Jing Zhong
    Xue Han
    Zechuan Lin
    Fei Wang
    Hang He
    Kai Wang
    Yuanzhu Yang
    BMC Plant Biology, 22
  • [35] High yielding F1 hybrid carrying Ur1 (Undulate rachis-1) gene in Japonica rice
    Murai, M
    Nagayama, A
    Sato, S
    Bahadur, H
    Ise, K
    Yoshida, T
    BREEDING SCIENCE, 2003, 53 (03) : 263 - 269
  • [36] Transcriptome profiling of two super hybrid rice provides insights into the genetic basis of heterosis
    Fu, Jun
    Zhang, Yilin
    Yan, Tianze
    Li, Yanfeng
    Jiang, Nan
    Zhou, Yanbiao
    Zhou, Qunfeng
    Qin, Peng
    Fu, Chenjian
    Lin, Haiyan
    Zhong, Jing
    Han, Xue
    Lin, Zechuan
    Wang, Fei
    He, Hang
    Wang, Kai
    Yang, Yuanzhu
    BMC PLANT BIOLOGY, 2022, 22 (01)
  • [37] MECHANIZED PRODUCTION OF F1 SEEDS IN RICE BY MIXED PLANTING
    MARUYAMA, K
    KATO, H
    ARAKI, H
    JARQ-JAPAN AGRICULTURAL RESEARCH QUARTERLY, 1991, 24 (04): : 243 - 252
  • [38] Establishment of F1 hybrid mortality in real time
    Saulsberry, Ashley
    Pinchas, Marisa
    Noll, Aaron
    Lynch, Jeremy A.
    Bordenstein, Seth R.
    Brucker, Robert M.
    BMC EVOLUTIONARY BIOLOGY, 2017, 17
  • [39] F1 Hybrid Pineapple Resistant to Bialaphos Herbicide
    Sripaoraya, S.
    Davey, M. R.
    Srinives, P.
    VII INTERNATIONAL PINEAPPLE SYMPOSIUM, 2011, 902 : 201 - 207
  • [40] Two Tightly Linked Genes at the hsa1 Locus Cause Both F1 and F2 Hybrid Sterility in Rice
    Kubo, Takahiko
    Takashi, Tomonori
    Ashikari, Motoyuki
    Yoshimura, Atsushi
    Kurata, Nori
    MOLECULAR PLANT, 2016, 9 (02) : 221 - 232