数字农科院2.0

A new strategy of molecular breeding for optimal heading date and grain yield in rice by modulating elite allelic combinations of Ghd7, Hd3a, RFT1 and Gn1a

文献类型: 外文期刊

作者: Qingmei Su;Rongsheng Wang;Xiaomin Feng;Mengyue Zhao;Guanlin Zhu;Qing Wang;Fang Zhang;Shaoyang Lin;Yuhang Zhang;Li Zhu;Qian Qian;Fan Chen

作者机构:

关键词: Adaptation;Elite gene combinations;Oryza sativa;Photoperiod response

期刊名称: Crop Journal

ISSN: 2095-5421

年卷期: 2025 年 13 卷 2 期

页码:

收录情况: SCIE(2025版) ; ; CSCD(2025-2026年度) ; ; 科技核心(2024版) ; ; 农林核心(2024版)

摘要: A later heading date generally leads to higher grain yield in favorable ecological regions; however, grain yield reaches a limit as the heading date exceeds a certain threshold. Ghd7 is the first cloned major gene that regulates heading date, plant height and grain number. Here, we investigated the relationship between Ghd7 and florigen genes Hd3a and RFT1, to determine their roles in regulating heading date and grain number under different photoperiods. Our results revealed that under long-day (LD) conditions, Hd3a acts prior to RFT1 to promote heading while negatively regulating plant height and grain number. In contrast, Ghd7 positively regulates heading date, plant height, and grain number by inhibiting both Hd3a and RFT1. Under short-day (SD) conditions, the functions of Hd3a and RFT1 remain consistent with those under LD conditions, but Ghd7 does not inhibit their expression, resulting in a weaker phenotypic effect compared to Hd3a. Additionally, under both LD and SD conditions, increased Ghd7 expression enhances its inhibitory effect on Hd3a and RFT1, leading to later heading and increased grain number; however, once the heading date exceeds 94 d, grain number no longer increases. Moreover, the gn1a allele increased grain number by 16.5% to 42.5%, while combinations of the elite alleles from Ghd7, Hd3a, RFT1, and Gn1a significantly increased grain number by up to 240.9%. Therefore, we propose a new breeding strategy to optimize the heading date and grain number using the Ghd7Hd3aRFT1gn1a combination of Ghd7, Hd3a, RFT1, and Gn1a under LD conditions, and the Ghd7hd3aRFT1gn1a combination under SD conditions. This strategy improved the yield of the high-quality Northeast variety Kongyu 131 (KY131) by 69.1% in Beijing and 93.7% in Hainan. This strategy will greatly improve the efficiency of north-to-south adaptation in rice, providing theoretical guidance for expanding the geographical adaptability of rice varieties.

分类号:

  • 相关文献

[1]OsCOL10, a CONSTANS-Like Gene, Functions as a Flowering Time Repressor Downstream of Ghd7 in Rice. Tan, Junjie,Jin, Mingna,Wu, Fuqing,Sheng, Peike,Cheng, Zhijun,Wang, Jiulin,Zheng, Xiaoming,Wang, Min,Zhu, Shanshan,Guo, Xiuping,Zhang, Xin,Wang, Haiyang,Wu, Chuanyin,Wan, Jianmin,Tan, Junjie,Sheng, Peike,Liu, Xuanming,Wan, Jianmin,Wang, Jiachang,Chen, Liping,Wang, Chunming,Wan, Jianmin,Tan, Junjie.

[2]Ectopic expression of soybean methionine synthase delays flowering time in transgenic tobacco plants. Gao, Z. L.,Wu, H.,Lin, D. Z.,Zhang, Q. L.,Chen, Y. H.,Gao, Z. L.,Wu, H.,Lin, D. Z.,Zhang, Q. L.,Chen, Y. H.,Sha, A. H.,Sha, A. H..

[3]Genetic analysis and QTL detection of reproductive period and post-flowering photoperiod responses in soybean. Cheng, Lirui,Wang, Ying,Zhang, Chunbin,Wu, Cunxiang,Xu, Jianlong,Zhu, Huiying,Leng, Jiantian,Bai, Yangnian,Guan, Rongxia,Hou, Wensheng,Han, Tianfu,Cheng, Lirui,Zhang, Lijuan.

[4]Distribution of the photoperiod insensitive Ppd-D1a allele in Chinese wheat cultivars. Yang, F. P.,Zhang, X. K.,Xia, X. C.,He, Z. H.,Yang, F. P.,Yang, W. X.,Zhang, X. K.,Laurie, D. A.,He, Z. H..

[5]Three FLOWERING LOCUS T-like genes function as potential florigens and mediate photoperiod response in sorghum. Wolabu, Tezera W.,Zhang, Fei,Niu, Lifang,Kalve, Shweta,Tadege, Million,Niu, Lifang,Bhatnagar-Mathur, Pooja,Muszynski, Michael G..

[6]Flowering and Morphology Responses of Greenhouse Ornamentals to End-of-Day Blue-Dominant Lighting with Different Phytochrome Photostationary States. Yun Kong,Qingming Li,David Llewellyn,Youbin Zheng. 2025

[7]ASSOCIATION OF QUANTITATIVE TRAIT LOCI FOR PLANT HEIGHT WITH MAJOR DWARFING GENES IN RICE. Huang, N,Courtois, B,Khush, GS,Lin, HX,Wang, GL,Wu, P,Zheng, KL.

[8]Adaptations of larvae and pupae of the rice water weevil, Lissorhoptrus oryzophilus kuschel (Coleoptera : Curculionidae), to living in flooded soils. Zhang, ZT,Stout, MJ,Shang, HW,Pousson, RC. 2006

[9]Vulnerability assessment of areas affected by Chinese cryospheric changes in future climate change scenarios. He Yong,Liu QiuFeng,Wu YongFeng. 2012

[10]Interpretation of Climate Change and Agricultural Adaptations by Local Household Farmers: a Case Study at Bin County, Northeast China. Yu Qiang-yi,Wu Wen-bin,Xia Tian,Yang Peng,Tang Hua-jun,Liu Zhen-huan,Verburg, Peter H.,Lu Zhong-jun,You Liang-zhi. 2014

[11]Making the Bread: Insights from Newly Synthesized Allohexaploid Wheat. Li, Ai-Li,Geng, Shuai-Feng,Mao, Long,Zhang, Lian-Quan,Liu, Deng-Cai. 2015

[12]The impact of weather variations on maize yields and household income: Income diversification as adaptation in rural China. Ma, Jiliang,Maystadt, Jean-Francois.

[13]The Sinocyclocheilus cavefish genome provides insights into cave adaptation. Yang, Junxing,Jiang, Wansheng,Pan, Xiaofu,Wang, Xiaoai,Chen, Xiaoyong,Zheng, Lanping,Chen, Xiaoli,Bai, Jie,Fang, Dongming,Qiu, Ying,Yuan, Hui,Bian, Chao,Lu, Jiang,He, Shiyang,Zhang, Yaolei,You, Xinxin,Wang, Yongsi,Sun, Ying,Mao, Danqing,Liu, Yong,Fan, Guangyi,Zhang, He,Zhang, Xinhui,Wang, Jintu,Chen, Jieming,Ruan, Zhiqiang,Li, Jia,Yu, Hui,Peng, Chao,Wang, Jian,Yang, Huanming,Wang, Jun,Xu, Xun,Bai, Jie,Qiu, Ying,Bian, Chao,You, Xinxin,Zhang, Xinhui,Chen, Jieming,Ruan, Zhiqiang,Li, Jia,Yu, Hui,Peng, Chao,Bai, Jie,Whitten, Tony,Qiu, Ying,Sun, Ying,Cheng, Le,Fang, Dongming,Lu, Jiang,He, Shiyang,Li, Jia,Yu, Hui,Zhang, Yaolei,Cheng, Le,Ma, Xingyu,Xu, Junmin,Shi, Qiong,Ma, Xingyu,Xu, Junmin,Shi, Qiong,He, You,Xu, Zhengfeng,Xu, Pao,Wang, Jian,Yang, Huanming,Wang, Jun. 2016

[14]Climate change impacts on crop yield and quality with CO2 fertilization in China. Lin, ED,Xiong, W,Ju, H,Xu, YL,Li, Y,Bai, LP,Xie, LY.

[15]Introgression and selection shaping the genome and adaptive loci of weedy rice in northern China. Sun, Jian,Ma, Dian-Rong,Xu, Zheng-Jin,Liu, Dan,Du, Hong-Bo,Chen, Wen-Fu,Sun, Jian,Ma, Dian-Rong,Xu, Zheng-Jin,Liu, Dan,Du, Hong-Bo,Chen, Wen-Fu,Qian, Qian.

[16]Combined small RNA and degradome sequencing reveals novel miRNAs and their targets in response to low nitrate availability in maize. Zhao, Yongping,Xu, Zhenhua,Mo, Qiaocheng,Zou, Cheng,Li, Wenxue,Xu, Yunbi,Xie, Chuanxiao,Xu, Yunbi,Mo, Qiaocheng,Xu, Zhenhua.

[17]Future cereal production in China: The interaction of climate change, water availability and socio-economic scenarios. Xiong Wei,Erda, Lin,Xu Yinlong,Ju Hui,Xiong Wei,Erda, Lin,Xu Yinlong,Ju Hui,Declan, Conway,Jiang Jinhe,Ian, Holman,Li Yan. 2009

[18]Widespread and Adaptive Alterations in Genome-Wide Gene Expression Associated with Ecological Divergence of Two Oryza Species. Guo, Jie,Liu, Rong,Huang, Lei,Zheng, Xiao-Ming,Liu, Ping-Li,Du, Yu-Su,Cai, Zhe,Zhou, Lian,Zhang, Fu-Min,Ge, Song,Liu, Rong,Du, Yu-Su,Cai, Zhe,Zhou, Lian,Ge, Song,Wei, Xing-Hua.

[19]Genetic evidence of local adaptation of wheat yellow rust (Puccinia striiformis f. sp tritici) within France. Duan, X,Leconte, M,Hovmoller, MS,De Vallavieille-Pope, C.

[20]Ecogeographic analysis of pea collection sites from China to determine potential sites with abiotic stresses. Li, Ling,Redden, Robert J.,Zong, Xuxiao,Berger, J. D.,Bennett, Sarita Jane.

作者其他论文 更多>>