Construction of a high-density genetic linkage map and identification of flowering-related QTL in erect milkvetch (Astragalus adsurgens)

被引:1
|
作者
Gong, Wenlong [1 ,2 ]
Ma, Lin [3 ]
Gao, Qiu [4 ]
Wei, Bao [3 ]
Zhang, Jiangui [1 ]
Liu, Xiqiang [2 ]
Gong, Pan [3 ]
Wang, Zan [2 ,3 ]
Zhao, Guiqin [1 ]
机构
[1] Gansu Agr Univ, Coll Pratacultural Sci, Lanzhou 730070, Gansu, Peoples R China
[2] China Agr Univ, Coll Grassland Sci & Technol, Beijing 100193, Peoples R China
[3] Chinese Acad Agr Sci, Inst Anim Sci, Beijing 100193, Peoples R China
[4] Natl Anim Husb Serv, Beijing 100125, Peoples R China
来源
CROP JOURNAL | 2022年 / 10卷 / 04期
关键词
Erect milkvetch; Genetic map; Flowering-related traits; QTL mapping; SLAF-seq; GENOME; L; BIOSYNTHESIS; ARCHITECTURE; TOLERANCE; HOMOLOG; REVEALS; PATTERN; TRAITS; RICE;
D O I
10.1016/j.cj.2022.01.008
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
Erect milkvetch (Astragalus adsurgens) is a perennial legume forage crop with economic and ecological value in livestock grazing and soil-erosion control in arid and semiarid areas worldwide. Genomic infor-mation and molecular tools to support breeding and research in the species are limited. The objectives of this investigation were to map its genome using DNA markers and to identify quantitative trait loci (QTL) in the species. An F1 mapping population of 250 plants was developed from a cross between two parents with differing flowering-related traits. A high-density genetic linkage map containing 4821 markers on eight linkage groups (LGs) with a total genetic length of 1395 cM and a mean interval of 0.29 cM between adjacent markers was constructed with SLAF-seq technology. Comparative genomic analyses revealed the highest genome sequence similarity (8.71%) between erect milkvetch and Medicago truncatula, fol-lowed by Glycine max (7.65%), Cicer arietinum (7.53%), and Lupinus angustifolius (5.21%). A total of 64 sig-nificant QTL for flowering-related traits on six LGs were detected, accounting for 9.38 to 19.1% of the associated phenotype variation. Five and 48 key candidate genes for floret number and inflorescence length were identified based on the Glycyrrhiza uralensis genome. These candidate genes were involved in ubiquitination/degradation, pollen development, cell division, cytokinin biosynthetic process, and plant flowering. These findings shed light on the regulation of flowering traits in erect milkvetch and pro-vide genomic resources for future molecular breeding of the crop.(C) 2022 Crop Science Society of China and Institute of Crop Science, CAAS. Production and hosting by Elsevier B.V. on behalf of KeAi Communications Co., Ltd.
引用
收藏
页码:1141 / 1150
页数:10
相关论文
共 50 条
  • [31] Construction of a high-density genetic map and QTL mapping for pearl quality-related traits in Hyriopsis cumingii
    Bai, Zhi-Yi
    Han, Xue-Kai
    Liu, Xiao-Jun
    Li, Qing-Qing
    Li, Jia-Le
    SCIENTIFIC REPORTS, 2016, 6
  • [32] Construction of a high-density genetic linkage map and QTL analysis of morphological traits in an F1 Malusdomestica x Malus baccata hybrid
    Cai, Huacheng
    Wang, Qian
    Gao, Jingdong
    Li, Chunyan
    Du, Xuemei
    Ding, Baopeng
    Yang, Tingzhen
    PHYSIOLOGY AND MOLECULAR BIOLOGY OF PLANTS, 2021, 27 (09) : 1997 - 2007
  • [33] SNP-based high-density linkage map construction and QTL mapping of black spot disease resistance in Chinese sand pear
    Zhu Hongyan
    Li Xianming
    Yang Fuchen
    Tu Junfan
    Yang Li
    Wu Tao
    Qin Zhongqi
    Yu Dazhao
    JOURNAL OF APPLIED GENETICS, 2023, 64 (01) : 23 - 36
  • [34] Construction of a high-density genetic linkage map and QTL mapping of growth and cold tolerance traits in tiger puffer Takifugu rubripes
    Liu, Zhifeng
    Wang, Xinan
    Ma, Aijun
    Zhu, Liguang
    Chang, Haowen
    Sun, Zhibin
    AQUACULTURE, 2022, 561
  • [35] Construction of a High-Density Genetic Linkage Map and QTL Mapping for Stem Rot Resistance in Passion Fruit (Passiflora edulis Sims)
    Wu, Yanyan
    Huang, Weihua
    Liu, Jieyun
    Zhou, Junniu
    Tian, Qinglan
    Xia, Xiuzhong
    Mou, Haifei
    Yang, Xinghai
    GENES, 2025, 16 (01)
  • [36] Construction of an ultrahigh-density genetic linkage map for Jatropha curcas L. and identification of QTL for fruit yield
    Xia, Zhiqiang
    Zhang, Shengkui
    Wen, Mingfu
    Lu, Cheng
    Sun, Yufang
    Zou, Meiling
    Wang, Wenquan
    BIOTECHNOLOGY FOR BIOFUELS, 2018, 11
  • [37] Construction of high density genetic map and QTL mapping in sorghum × sudangrass
    Peng Jin
    Lihua Wang
    Wenjie Zhao
    Jian Zheng
    Yi-Hong Wang
    Yanlong Liu
    Ruirui Meng
    Jichao Dai
    Lei Zhou
    Jieqin Li
    Euphytica, 2021, 217
  • [38] High-Density Genetic Map Construction and Identification of QTLs Controlling Leaf Abscission Trait in Poncirus trifoliata
    Xu, Yuan-Yuan
    Liu, Sheng-Rui
    Gan, Zhi-Meng
    Zeng, Ren-Fang
    Zhang, Jin-Zhi
    Hu, Chun-Gen
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2021, 22 (11)
  • [39] Construction of a high-density linkage map and QTL detection of growth and sex in blotched snakehead (Channa maculata)
    Liu, Haiyang
    Chen, Kunci
    Luo, Qing
    Ou, Mi
    Liu, Lan
    Gao, Dandan
    Wu, Yanduo
    Zhu, Xinping
    Zhao, Jian
    AQUACULTURE, 2021, 538
  • [40] High-density linkage map construction and QTL analysis of fiber quality and lint percentage in tetraploid cotton
    Zhu, Linglong
    Andres, Ryan J.
    Zhang, Kuang
    Kuraparthy, Vasu
    CROP SCIENCE, 2021, 61 (05) : 3340 - 3360