Scientia Agricultura Sinica

Previous Articles    

Construction of ms1 Basic Recurrent Populations Adapted to Different Ecological Regions Using Maturity genes E1 and E2 in Soybean

HU Xuejie1,2, LIU LuPing2, WANG FengMin2, HAN YuHua2, SUN BinCheng3, MA QiBin4, HUANG ZhiPing5, FENG Yan2, CHEN Qiang2, YANG ChunYan2, ZHANG MengChen2, ZHANG Kai1*, QIN Jun2*  #br#   

  1. 1College of Agronomy and Biotechnology, Hebei Normal University of Science & Technology/Key Laboratory of Crop Stress Biology in Hebei Province, Qinhuangdao 066004, Hebei; 2Institute of Cereal and Oil Crops, Hebei Academy of Agriculture and Forestry Sciences/National Soybean improvement Center Sjijiazhuang Sub-Center/Huang-Huai-Hai Key Laboratory of Biology and Genetic Breeding of Soybean, Ministy of Agriculture and Rural Affairs/Hebei Laboratory of Crop Genetics and Breeding, Shijiazhuang 050035; 3Hulunbuir Institute of Agricultural and Animal Husbandry Sciences, Hulunbuir 162650, Inner Mongolia; 4College of Agriculture, South China Agricultural University, Guangzhou 251064; 5Anhui Academy of Agricultural Sciences, Hefei 230031, Anhui
  • Published:2024-08-16

Abstract: 【Objective】Soybean is a short day crop that is sensitive to photoperiod, and it maybe lead to premature or late flowering when it is planted in different ecological areas. Therefore, in the application of ms1 (male sterility 1) basic population for recurrent selection in different ecological regions, there are problems such as the flowering time unsynchronization between local donor parents and acceptor sterile plants and low introduction rate. The purpose of this study is to construct ms1 basic recurrent population adapted to three ecological regions for improving the probability of flowering time synchronization between donor parents and acceptor sterile plants and reveal the changes of maturity genes E1 and E2 genotypes and phenotype of each population after two rounds of cross-fertilize for providing evidence for improvement of the flowering and maturity time of soybeans.【Method】We used 528 donor parents from different ecological regions and the ms1 basic population as materials. The donor parents were genotyping with the KASP markers of maturity genes E1 and E2 reported by previous research. The donor parents were classified according to E1 and E2 genotypes and mixed with seeds of ms1 basic population respectively, and these populations were planted in different ecological areas according to the suitable genotypes of each region for two rounds of cross-fertilize in two years. Northeast ecological region population was planted in Hulunbuir, Inner Mongolia and Chengde, Hebei respectively. Huang-Huai-Hai ecological region population was planted in Shijiazhuang, Hebei and Xuchang, Henan. South ecological region population was planted in Guangzhou, Guangdong. Seeds harvested from different ms1 populations were planted in Sanya, Hainan every winter. The flowering and maturity time of donor parents and ms1 basic population were investigated, and the proportions of E1 and E2 genotypes in populations of different region were calculated. 【Result】According to genotypes of maturity genes E1 and E2, the donor parents were divided into four groups E1E1/E2E2, E1E1/e2e2, e1e1/E2E2 and e1e1/e2e2 with ratios of 12.1%, 65.0%, 19.3%, and 3.6%, respectively. In the ms1 basic population, the late flowering genotype E1E1/E2E2 had the highest proportion (48.6%), and the flowering time of the population was late, mainly concentrated in 45-51 days. After two rounds of import by cross-fertilize, the percentage of target genotype e1e1/e2e2 increased from 33.0% to 51.6% in Hulunbuir of Northeast China, and the percentage of the e1e1/e2e2 genotype increased from 1.6% to 8% in Chengde. The percentage of target genotype e1e1/E2E2 increased from 18% to 23.1% in Shijiazhuang of Huanghuaihai ecological area, and the percentage of E1E1/e2e2 increased from 12.5% to 30% in Xuchang, respectively. The percentage of E1E1/E2E2 remains above 80% in Guangzhou of South ecological region. The proportion of heterozygous genotypes of target imported genotypes was also increasing in the population. After two rounds of cross-fertilize, there were significant differences in flowering time among ms1 populations of different ecological regions, indicating that phenotypes of different populations also changed with the change of genotype of flowering genes.【Conclusion】Importing genotype of donor parents into the ms1 population based on their genotypes of flowering genes can increase the frequency of suitable genotypes in each ecological region, construct ms1 basic recurrent populations adapted to different ecological regions, increase the probability of flower time synchronization of local donor parents and acceptor ms1 sterile plants, achieve open pollination, gene aggregation and accumulation in soybean, and enrich the genetic diversity of the population, further improve breeding efficiency.


Key words: soybean, ms1 basic recurrent population, flowering time, maturity time, E1, E2, KASP

[1] CHEN WenJie, CHEN Yuan, WEI QingYuan, TANG FuYue, GUO XiaoHong, CHEN ShuFang, QIN XiaYan, WEI RongChang, LIANG Jiang. Identification of Candidate Genes Controlling SSCLD by Utilizing High-Generation Segregating Populations RNA-seq [J]. Scientia Agricultura Sinica, 2024, 57(15): 2914-2930.
[2] ZHANG ZiHui, ZHANG YanFei, LI Long, LI ChaoNan, WANG JingYi, YANG DeLong, MAO XinGuo, JING RuiLian. Wheat Enolase Gene TaENO1-5B Involved in Regulating Plant Height and Grain Number Per Spike in Multiple Environments [J]. Scientia Agricultura Sinica, 2024, 57(14): 2717-2731.
[3] ZHU ZuoYin, ZHAO HanKe, CHENG HaiSheng, HAN MengYi, QIU Zhi, WANG Jie, ZHOU XinLi, YANG JunHua. Study on Characterization and Interaction Analysis of Co-Contamination of Multi-Mycotoxins in the Flours of Rice, Maize, Soybean and Wheat Flour in Shanghai from 2021 to 2022 [J]. Scientia Agricultura Sinica, 2024, 57(12): 2454-2466.
[4] MIAO Long, SHU Kuo, HU YanJiao, HUANG Ru, HE GenHua, ZHANG WenMing, WANG XiaoBo, QIU LiJuan. Identification and Gene Mapping of Hard Seededness Mutant Mzp661 in Soybean [J]. Scientia Agricultura Sinica, 2024, 57(11): 2065-2078.
[5] ZHANG YuMei, DING WenTao, LAN XinLong, LI QingHua, HU RunFang, GUO Na, LIN GuoQiang, ZHAO JinMing. Genome Wide Association Analysis of Soluble Sugar Content in Fresh Seeds of Soybean Landraces [J]. Scientia Agricultura Sinica, 2024, 57(11): 2079-2091.
[6] MIAO Long, YANG Lei, XU JingHao, LI Na, WANG FeiYu, QIU LiJuan, WANG XiaoBo. Establishment of Evaluation System and Screening of Disease- Resistant Accessions for Phomopsis Seed Decay in Soybean Germination Stage [J]. Scientia Agricultura Sinica, 2024, 57(11): 2092-2101.
[7] SHOU XinYue, LIU Zhi, CHEN YueHan, LI ChenHui, SUN BinCheng, SUN RuJian, HAN DeZhi, LU WenCheng, SHEN YongHui, WANG XiaoBo, YAN Long. Genome-Wide Association Analysis of Soybean Nodulation-Related Traits in the Northern Hebei [J]. Scientia Agricultura Sinica, 2024, 57(11): 2102-2113.
[8] ZHOU YeYing, XIE ZiWen, ZHONG PeiGe, LI ShuangWei, MA YunTao. Quantification of Row Orientation Effects on Radiation Distribution in Maize-Soybean Intercropping Based on Functional-Structural Plant Model [J]. Scientia Agricultura Sinica, 2024, 57(10): 1882-1899.
[9] LI ShengYou, WANG ChangLing, YAN ChunJuan, ZHANG LiJun, SUN XuGang, CAO YongQiang, WANG WenBin, SONG ShuHong. Evaluation of Drought Resistance in Soybean Germplasm and Identification of Candidate Drought-Resistant Genes [J]. Scientia Agricultura Sinica, 2024, 57(10): 1857-1869.
[10] WANG Mai, DONG QingFeng, GAO ShenAo, LIU DeZheng, LU Shan, QIAO PengFang, CHEN Liang, HU YinGang. Genome-Wide Association Studies and Mining for Favorable Loci of Root Traits at Seedling Stage in Wheat [J]. Scientia Agricultura Sinica, 2023, 56(5): 801-820.
[11] ZHENG WenYan, CHANG YuanSheng, HE Ping, HE XiaoWen, WANG Sen, GAO WenSheng, LI LinGuang, WANG HaiBo. Development and Validation of KASP Markers Based on a Whole- Genome Resequencing Approach in a Hybrid Population of Luli × Red No. 1 [J]. Scientia Agricultura Sinica, 2023, 56(5): 935-950.
[12] GAO Jing, CHEN JiYu, TAN XianMing, WU YuShan, YANG WenYu, YANG Feng. Effect of Light Intensity on Leaf Hydraulic Conductivity and Vein Traits of Soybean at Seedling Stage [J]. Scientia Agricultura Sinica, 2023, 56(22): 4417-4427.
[13] ZHANG ZeYuan, LI Yue, ZHAO WenSha, GU JingJing, ZHANG AoYan, ZHANG HaiLong, SONG PengBo, WU JianHui, ZHANG ChuanLiang, SONG QuanHao, JIAN JunTao, SUN DaoJie, WANG XingRong. QTL Mapping and Molecular Marker Development of Traits Related to Grain Weight in Wheat [J]. Scientia Agricultura Sinica, 2023, 56(21): 4137-4149.
[14] LI Yan, TAO KeYu, HU Yue, LI YongXiang, ZHANG DengFeng, LI ChunHui, HE GuanHua, SONG YanChun, SHI YunSu, LI Yu, WANG TianYu, ZOU HuaWen, LIU XuYang. Function of Maize ZCN7 in Regulating Drought Resistance at Flowering Stage [J]. Scientia Agricultura Sinica, 2023, 56(16): 3051-3061.
[15] SUN Tao, FENG XiaoMin, GAO XinHao, DENG AiXing, ZHENG ChengYan, SONG ZhenWei, ZHANG WeiJian. Effects of Diversified Cropping on the Soil Aggregate Composition and Organic Carbon and Total Nitrogen Content [J]. Scientia Agricultura Sinica, 2023, 56(15): 2929-2940.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!