数字农科院2.0

Integrated transcriptomics and physio-biochemical analysis revealed key genes affecting the seed germination of Leymus chinensis

文献类型: 外文期刊

作者: Yumei Feng;Wenlong Gong;Lemeng Liu;Chunyu Tian;Yanting Yang;Zinian Wu

作者机构:

关键词: Leymus chinensis;RNA-seq;seed germination;seed hulls;transcription factor

期刊名称: Frontiers in Plant Science

ISSN: 1664-462X

年卷期: 2025 年 16 卷

页码:

收录情况: SCIE(2025版)

摘要: Leymus chinensis, also known as alkali grass, is a perennial rhizomatous herbaceous plant with a significant ecological and economic value. However, its industrial development is hindered by low seed germination rates. Therefore, how to break the seed dormancy and improve the germination rate of L. chinensis seeds has become a hot topic nowadays. In this study, the increase of gibberellin (GA) content is one of the main factors promoting the seed germination of L. chinensis. Furthermore, to further explore the molecular mechanisms underlying seed germination regulation, RNA sequencing (RNA-seq) analysis of seeds at different developmental stages was carried out to explore the potential regulatory factors of seed hulls affecting the seed germination of L. chinensis. A total of 21,564, 21,010, and 31,795 differentially expressed genes (DEGs) were identified in “H_CK_0 vs. DH_CK_0”, “H_CK_2 vs. DH_CK_2”, and “H_CK_7 vs. DH_CK_7”, respectively. Kyoto Encyclopedia of Genes and Genomes (KEGG) analysis showed that the DEGs were significantly enriched in plant hormone signal transduction, starch and sucrose metabolism, and mitogen-activated protein kinase (MAPK) signaling pathways. Within these pathways, we identified several candidate genes potentially involved in seed hull-mediated germination regulation, including those encoding α-amylase (AMY1), β-amylase (BAM1), α-xylosidase (XYL1), β-glucosidase (BGLU10/45), auxin-responsive protein (IAA18), and transcription factors (WRKY, AP2/ERF, ABI2, bZIP, and NAC). These results provide valuable genetic resources for studying the molecular mechanism of L. chinensis seed germination.

分类号:

  • 相关文献

[1]Comprehensive analysis of transcriptional data on seed germination of two maize inbred lines under low-temperature conditions. Yinchao Zhang,Peng Liu,Chaoying Zou,Zhong Chen,Guangsheng Yuan,Shibin Gao,Guangtang Pan,Yaou Shen,Langlang Ma. 2023

[2]地理气候因素对羊草性状分化的影响. 白乌云,侯向阳,武自念,张宝林. 2020

[3]Comparative Transcriptome Analysis of Primary Roots of Brassica napus Seedlings with Extremely Different Primary Root Lengths Using RNA Sequencing. Dun, Xiaoling,Tao, Zhangsheng,Wang, Jie,Wang, Xinfa,Liu, Guihua,Wang, Hanzhong. 2016

[4]Analysis of global gene expression profiles to identify differentially expressed genes critical for embryo development in Brassica rapa. Zhang, Yu,Peng, Lifang,Wu, Ya,Shen, Yanyue,Wang, Jianbo,Wu, Xiaoming.

[5]Global transcriptome and gene regulation network for secondary metabolite biosynthesis of tea plant (Camellia sinensis). Li, Chun-Fang,Wang, Xin-Chao,Yao, Ming-Zhe,Chen, Liang,Yang, Ya-Jun,Zhu, Yan,Yu, Yao,Zhao, Qiong-Yi,Li, Xuan,Wang, Sheng-Jun,Luo, Da. 2015

[6]RNA-Seq with a novel glabrous-ZM24fl reveals some key lncRNAs and the associated targets in fiber initiation of cotton. Xianyan Zou,Faiza Ali,Shuangxia Jin,Fuguang Li,Zhi Wang. 2022

[7]Transcriptional Profiling Analysis Providing Insights into the Harsh Environments Tolerance Mechanisms of Krascheninnikovia arborescens. Hongyi Zhang,Yingnan Wang,Binjie Ma,Xiangqi Bu,Zhenhua Dang,Yingchun Wang. 2024

[8]Protein-DNA interactions in the promoter region of the gene encoding diapause hormone and pheromone biosynthesis activating neuropeptide of the cotton bollworm, Helicoverpa armigera. Hong, B,Zhang, ZF,Tang, SM,Yi, YZ,Zhang, TY,Xu, WH.

[9]Linking nutrient strategies with plant size along a grazing gradient: Evidence from Leymus chinensis in a natural pasture. Li Xi-liang,Liu Zhi-ying,Ren Wei-bo,Ding Yong,Ji Lei,Guo Feng-hui,Hou Xiang-yang. 2016

[10]Gibberellin stimulates regrowth after defoliation of sheepgrass (Leymus chinensis) by regulating expression of fructan-related genes. Cai, Yueyue,Liu, Gongshe,Chen, Shuangyan,Shao, Linhui,Li, Xiuqing.

[11]The genetic diversity of perennial Leymus chinensis originating from China. Liu, Z. P.,Li, X. F.,Li, H. J.,Yang, Q. C.,Liu, G. S.. 2007

[12]Management Regimen and Seeding Rate Modify Seedling Establishment of Leymus chinensis. Liu, G. X.,He, F.,Wan, L. Q.,Li, X. L.,Liu, G. X..

[13]Long-term effects of mowing on plasticity and allometry of Leymus chinensis in a temperate semi-arid grassland, China. Li Xiliang,Hou Xiangyang,Ren Weibo,Wu Xinhong,Baoyin, Taogetao,Liu Zhiying,Li Yaqiong,Xu Huimin,Badgery, Warwick. 2016

[14]Physiological and biochemical characterization of sheepgrass (Leymus chinensis) reveals insights into photosynthetic apparatus coping with low-phosphate stress conditions. Li, Lingyu,Yang, Haomeng,Liu, Bei,Cheng, Dongmei,Peng, Lianwei,Huang, Fang,Li, Lingyu,Liu, Bei,Cheng, Dongmei,Ren, Weibo,Wu, Xinhong,Gong, Jirui.

[15]Comparative Analysis of Polysaccharides from Two Ecological Types of Leymus chinensis. Bi Hong-tao,Li Jing-jing,Chen Xi-guang,Yan Ji-hong,Sun Fang,Fan Sha-sha,Cao Gang,Zhou Yi-fa. 2012

[16]Exogenous Spermidine Priming Mitigates the Osmotic Damage in Germinating Seeds of Leymus chinensis Under Salt-Alkali Stress. Chen Hongna,Shi Junmei,Tao Leyuan,Han Xiaori,Lin Guolin,Cheng Xianguo. 2021

[17]Effects of Rust on Plant Growth and Stoichiometry of Leymus chinensis under Different Grazing Intensities in Hulunber Grassland. Yawen Zhang,Zhibiao Nan,Michael John Christensen,Xiaoping Xin,Nan Zhang. 2022

[18]Genetic variation and population structure analysis of Leymus chinensis (Trin.) Tzvelev from Eurasian steppes using SSR makers. Ahmed, Naseer,Hou, Xianyang. 2022

[19]Free-Grazing versus Enclosure Lead to an Increase in the Germination of the Leymus chinensis Seed Bank in the Hulunbuir Grassland. Liu H.,Wu Y.,Li Y.,Lv S.,Wei Z.,Chen B.,Xu L.,Yang G.,Xin X.,Yan R.. 2023

[20]Exogenous salicylic acid signal reveals an osmotic regulatory role in priming the seed germination of Leymus chinensis under salt-alkali stress. Hongna Chen,Leyuan Tao,Junmei Shi,Xiaori Han,Xianguo Cheng. 2021

作者其他论文 更多>>