数字农科院2.0

DNA Demethylation Induces Tree Peony Flowering with a Low Deformity Rate Compared to Gibberellin by Inducing PsFT Expression under Forcing Culture Conditions

文献类型: 外文期刊

作者: Sun, Kairong;Xue, Yuqian;Prijic, Zeljana;Wang, Shunli;Markovic, Tatjana;Tian, Caihuan;Wang, Yingying;Xue, Jingqi;Zhang, Xiuxin

作者机构:

关键词: Paeonia suffruticosa;DNA methylation;photoperiod pathway;McrBC PCR;transcriptome;promoter

期刊名称: INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES

ISSN:

年卷期: 2022 年 23.0 卷 12 期

页码:

摘要: Gibberellin (GA) is frequently used in tree peony forcing culture, but inappropriate application often causes flower deformity. Here, 5-azacytidine (5-azaC), an efficient DNA demethylating reagent, induced tree peony flowering with a low deformity rate by rapidly inducing PsFT expression, whereas GA treatment affected various flowering pathway genes with strong pleiotropy. The 5-azaC treatment, but not GA, significantly reduced the methylation level in the PsFT promoter with the demethylation of five CG contexts in a 369 bp CG-rich region, and eight light-responsive related cis-elements were also predicted in this region, accompanied by enhanced leaf photosynthetic efficiency. Through GO analysis, all methylation-closer differentially expressed genes (DEGs) were located in the thylakoid, the main site for photosynthesis, and were mainly involved in response to stimulus and single-organism process, whereas GA-closer DEGs had a wider distribution inside and outside of cells, associated with 12 categories of processes and regulations. We further mapped five candidate DEGs with potential flowering regulation, including three kinases (SnRK1, WAK2, and 5PTase7) and two bioactive enzymes (cytochrome P450 and SBH1). In summary, 5-azaC and GA may have individual roles in inducing tree peony flowering, and 5-azaC could be a preferable regulation approach; DNA demethylation is suggested to be more focused on flowering regulation with PsFT playing a core role through promoter demethylation. In addition, 5-azaC may partially undertake or replace the light-signal function, combined with other factors, such as SnRK1, in regulating flowering. This work provides new ideas for improving tree peony forcing culture technology.

分类号:

  • 相关文献

[1]Rapid alterations of gene expression and cytosine methylation in newly synthesized Brassica napus allopolyploids. Xu, Yanhao,Zhong, Lan,Wang, Jianbo,Wu, Xiaoming,Fang, Xiaoping.

[2]Photoperiod Induces DNA Methylation Changes in the Melatonin Receptor 1A Gene in Ewes. He, Xiaoyun,Wang, Wei,Sun, Wei,Chu, Mingxing. 2023

[3]Genome-Wide Tissue-Specific Genes Identification for Novel Tissue-Specific Promoters Discovery in Soybean. Yu, Lili,Zhang, Hao,Guan, Rongxia,Li, Yinghui,Guo, Yong,Qiu, Lijuan. 2023

[4]EIAV基因转移载体启动子的比较. 韩凌霞,李亚明,曲连东,司昌德,姜骞,刘家森. 2006

[5]The multi-omics basis of potato heterosis. Dawei Li,Xiaoyue Lu,Yanhui Zhu,Jun Pan,Shaoqun Zhou,Xinyan Zhang,Guangtao Zhu,Yi Shang,Sanwen Huang,Chunzhi Zhang. 2022

[6]DNA Methylation and RNA-Sequencing Analysis to Identify Genes Related to Spontaneous Leaf Spots in a Wheat Variety ‘Zhongkenuomai No.1’. Xu Z.,Wang F.,Fan X.,Feng B.,Zhou Q.,Yang Q.,Wang T.. 2022

[7]Integrated analysis of DNA methylation and transcriptome profiles in broiler heart and lung tissues reveals epigenetic regulatory mechanisms underlying ascites syndrome. Zhang, Qi,Su, Meng,Song, Danli,Gao, Qianmei,Liu, Sha,Liu, Yuezheng,Wang, Jingjing,Wang, Xiaoya,Wang, Mengjie,Zhao, Guiping,Li, Qinghe. 2025

[8]Spatiotemporal methylome remodeling during fiber differentiation in Gossypium hirsutum. Zhipeng Yu,Haijuan Cao,Xiaolian Xiong,Shuhan Wen,Xia Huang,Ying Jin,Junkang Rong,Mingquan Ding. 2025

[9]Nutrient Supply Is Essential for Shifting Tree Peony Reflowering Ahead in Autumn and Sugar Signaling Is Involved. Yuqian Xue,Jingqi Xue,Xiuxia Ren,Changyue Li,Kairong Sun,Litao Cui,Yingmin Lyu,Xiuxin Zhang. 2022

[10]Defoliation, Not Gibberellin, Induces Tree Peony Autumn Reflowering Regulated By Carbon Allocation And Metabolism In Buds And Leaves. Wang, XP, Wang, SL, Xue, YQ, Ren, XX, Xue, JQ, Zhang, XX. 2020

[11]Characterization of a Maize Wip1 Promoter in Transgenic Plants. Zhang, Shengxue,Liu, Yan,Wang, Xiaoqing,Liu, Yunjun,Wang, Guoying,Lian, Yun. 2013

[12]Isolation and characterization of Brittle2 promoter from Zea Mays and its comparison with Ze19 promoter in transgenic tobacco plants. Chen, Xiaoping,Wang, Zhangying,Wang, Jianhua,Wang, Maoyan,Zhao, Li,Wang, Guoying. 2007

[13]Isolation of a maize beta-glucosidase gene promoter and characterization of its activity in transgenic tobacco. Gu, Riliang,Zhao, Li,Zhang, Ying,Chen, Xiaoping,Bao, Juan,Zhao, Jinfeng,Wang, Zhangying,Fu, Junjie,Liu, Tingsong,Wang, Jianhua,Wang, Guoying. 2006

[14]GmPRP2 promoter drives root-preferential expression in transgenic Arabidopsis and soybean hairy roots. Chen, Li,Jiang, Bingjun,Wu, Cunxiang,Sun, Shi,Hou, Wensheng,Han, Tianfu. 2014

[15]Analysis of promoters of microRNAs from a Glycine max degradome library. Han, Yi-qiang,Gao, Ya-mei,Hu, Zheng,Zheng, Dian-feng. 2014

[16]The characterization of GmTIP, a root-specific gene from soybean, and the expression analysis of its promoter. Chen, Li,Jiang, Bingjun,Wu, Cunxiang,Sun, Shi,Hou, Wensheng,Han, Tianfu.

[17]Transcriptional regulation of the gene for prothoracicotropic hormone in the silkworm, Bombyx mori. Wei, Zhao-Jun,Yu, Miao,Hong, Gui-Yun,Jiang, Shao-Tong,Tang, Shun-Ming,Yi, Yong-Zhu.

[18]Subcellular localization, expression patterns, SNPs and association analyses of the porcine HUMMLC2B gene. Wang, Huan L.,Wang, Heng,Zhu, Zheng M.,Wang, Chen F.,Zhu, Meng J.,Mo, De L.,Yang, Shu L.,Li, Kui.

[19]Isolation, Characterization and Promoter Analysis of Cell Wall Invertase Gene SoCIN1 from Sugarcane (Saccharum spp.). Wang, Ai-Qin,Huang, Jing-Li,Yang, Li-Tao,Yang, Li-Tao,Li, Yang-Rui,Yang, Li-Tao,Li, Yang-Rui. 2015

[20]Comparison of six promoters for transient expression of luciferase reporter gene in cultured Bombyx mori cells (BmN). Huang, Yong,Wang, Jian Ping,Huang, Yong,Song, Fei,Wang, Xin,Shen, Xing Jia.

作者其他论文 更多>>