Dynamic QTL mapping revealed primarily the genetic structure of photosynthetic traits in castor (Ricinus communis L.)

被引:0
|
作者
Guanrong Huang
Xuegui Yin
Jiannong Lu
Liuqin Zhang
Dantong Lin
Yu Xie
Haiyan Liu
Chaoyu Liu
Jinying Zuo
Xiaoxiao Zhang
机构
[1] Guangdong Ocean University,College of Coastal Agricultural Sciences
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
High photosynthetic efficiency is the basis of high biomass and high harvest index in castor (Ricinus communis L.). Understanding the genetic law of photosynthetic traits will facilitate the breeding for high photosynthetic efficiency. In this study, the dynamic QTL mapping was performed with the populations F2 and BC1 derived from 2 parents with significant difference in net photosynthetic rate (Pn) at 3 stages, in order to reveal the genetic structure of photosynthetic traits. In F2 population, 26 single-locus QTLs were identified, including 3/3/1 (the QTL number at stage I/II/III, the same below), 1/2/0, 1/2/2, 1/3/1, 0/1/1, and 1/1/2 QTLs conferring Pn, water use efficiency (Wue), transpiration rate (Tr), stomatal conductance (Gs), intercellular CO2 concentration (Ci) and chlorophyll content (Cc), with a phenotypic variation explained (PVE) of 8.40%/8.91%/6.17%, 5.36%/31.74%/0, 7.31%/12.80%/15.15%, 1.60%/6.44%/0.02%, 0/1.10%/0.70% and 2.77%/3.96%/6.50% respectively. And 53 epistatic QTLs (31 pairs) were identified, including 2/2/5, 5/6/3, 4/4/2, 6/3/2, 3/2/0 and 4/0/0 ones conferring the above 6 traits, with a PVE of 6.52%/6.47%/19.04%, 16.72%/15.67%/14.12%, 18.57%/15.58%/7.34%, 21.72%/8.52%/7.13%, 13.33%/4.94%/0 and 7.84%/0/0 respectively. The QTL mapping results in BC1 population were consistent with those in F2 population, except fewer QTLs detected. Most QTLs identified were minor-effect ones, only a few were main-effect ones (PVE > 10%), focused on 2 traits, Wue and Tr, such as qWue1.1, qWue1.2, FqTr1.1, FqTr6, BqWue1.1 and BqTr3; The epistatic effects, especially those related to the dominance effects were the main genetic component of photosynthetic traits, and all the epistatic QTLs had no single-locus effects except qPn1.2, FqGs1.2, FqCi1.2 and qCc3.2; The detected QTLs underlying each trait varied at different stages except stable QTLs qGs1.1, detected at 3 stages, qWue2, qTr1.2 and qCc3.2, detected at 2 stages; 6 co-located QTLs were identified, each of which conferring 2–5 different traits, demonstrated the gene pleiotropy between photosynthetic traits; 2 QTL clusters, located within the marker intervals RCM1842-RCM1335 and RCM523-RCM83, contained 15/5 (F2/BC1) and 4/4 (F2/BC1) QTLs conferring multiple traits, including co-located QTLs and main-effect QTLs. The above results provided new insights into the genetic structure of photosynthetic traits and important references for the high photosynthetic efficiency breeding in castor plant.
引用
收藏
相关论文
共 50 条
  • [1] Dynamic QTL mapping revealed primarily the genetic structure of photosynthetic traits in castor (Ricinus communis L.)
    Huang, Guanrong
    Yin, Xuegui
    Lu, Jiannong
    Zhang, Liuqin
    Lin, Dantong
    Xie, Yu
    Liu, Haiyan
    Liu, Chaoyu
    Zuo, Jinying
    Zhang, Xiaoxiao
    SCIENTIFIC REPORTS, 2023, 13 (01)
  • [2] GENETIC VARIABILITY AND TRAITS ASSOCIATION IN CASTOR BEAN (Ricinus communis L.)
    Goodarzi, Farnaz
    Hassani, Abbas
    Darvishzadeh, Reza
    Maleki, Hamid Hatami
    GENETIKA-BELGRADE, 2015, 47 (01): : 265 - 274
  • [3] Genetic Diversity of Castor Bean (Ricinus communis L.) Revealed by ISSR and RAPD Markers
    Kim, HyokChol
    Lei, Pei
    Wang, Aizhi
    Liu, Shuo
    Zhao, Yong
    Huang, Fenglan
    Yu, Zhenliang
    Zhu, Guoli
    He, Zhibiao
    Tan, Deyun
    Wang, Hongwei
    Meng, Fanjuan
    AGRONOMY-BASEL, 2021, 11 (03):
  • [4] Genetic diversity, population structure and association mapping of morphobiochemical traits in castor ( Ricinus communis L.) through simple sequence repeat markers
    Memon, Juned
    Patel, Rumit
    Patel, Bharat N.
    Patel, M. P.
    Madariya, R. B.
    Patel, J. K.
    Kumar, Sushil
    INDUSTRIAL CROPS AND PRODUCTS, 2024, 221
  • [5] GENETIC DIVERSITY AND RELATIONSHIP OF TUNISIAN CASTOR (Ricinus communis L.) GENOTYPES REVEALED BY SSR MARKERS
    Vivodik, Martin
    Saadaoui, Ezzeddine
    Balazova, Zelmira
    Galova, Zdenka
    GENETIKA-BELGRADE, 2020, 52 (02): : 765 - 776
  • [6] Genetic diversity of castor bean (Ricinus communis L.) in Northeast China revealed by ISSR markers
    Wang, Chao
    Li, Guo-rui
    Zhang, Zhi-yong
    Peng, Mu
    Shang, Yu-si
    Luo, Rui
    Chen, Yong-sheng
    BIOCHEMICAL SYSTEMATICS AND ECOLOGY, 2013, 51 : 301 - 307
  • [7] Photosynthetic characteristics of the cotyledon and first true leaf of castor (Ricinus communis L.)
    Zheng, Wei
    Wang, Ping
    Zhang, HongXiang
    Zhou, Daowei
    AUSTRALIAN JOURNAL OF CROP SCIENCE, 2011, 5 (06) : 702 - 708
  • [8] Integrating QTL mapping with transcriptome analysis mined candidate genes of growth stages in castor (Ricinus communis L.)
    Guanrong Huang
    Jiannong Lu
    Xuegui Yin
    Liuqin Zhang
    Haihong Lin
    Xiaoxiao Zhang
    Chaoyu Liu
    Jinying Zuo
    BMC Genomics, 26 (1)
  • [9] QTL mapping and candidate gene mining of seed size and seed weight in castor plant (Ricinus communis L.)
    Huang, Guanrong
    Lu, Jiannong
    Yin, Xuegui
    Zhang, Liuqin
    Liu, Chaoyu
    Zhang, Xiaoxiao
    Lin, Haihong
    Zuo, Jinying
    BMC PLANT BIOLOGY, 2024, 24 (01):
  • [10] Opportunities and Challenges of Castor Bean (Ricinus communis L.) Genetic Improvement
    Landoni, Michela
    Bertagnon, Greta
    Ghidoli, Martina
    Cassani, Elena
    Adani, Fabrizio
    Pilu, Roberto
    AGRONOMY-BASEL, 2023, 13 (08):