Genetic variability predicting breeding potential of upland cotton (Gossypium hirsutum L.) for high temperature tolerance

被引:1
作者
Farooq, Amjad [1 ]
Shakeel, Amir [2 ]
Saeed, Asif [2 ]
Farooq, Jehanzeb [1 ]
Rizwan, Muhammad [1 ]
Chattha, Waqas Shafqat [2 ]
Sarwar, Ghulam [1 ]
Ramzan, Yasir [1 ]
机构
[1] Ayub Agr Res Inst, Cotton Res Stn, Faisalabad 38000, Pakistan
[2] Univ Agr Faisalabad, Dept Plant Breeding & Genet, Faisalabad 38040, Pakistan
关键词
High temperature; Upland cotton; Peak flowering; Heterosis; Gene action; Combining ability; COMBINING ABILITY ANALYSIS; HEAT TOLERANCE; HIRSUTUM L; CANOPY TEMPERATURE; FIBER QUALITY; SEED COTTON; YIELD; TRAITS; HETEROSIS; CULTIVARS;
D O I
10.1186/s42397-023-00144-z
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
BackgroundHigh temperature stress at peak flowering stage of cotton is a major hindrance for crop potential. This study aimed to increase genetic divergence regarding heat tolerance in newly developed cultivars and hybrids. Fifty cotton genotypes and 40 F-1 (hybrids) were tested under field conditions following the treatments, viz., high temperature stress and control at peak flowering stage in August and October under April and June sowing, respectively.ResultsThe mean squares revealed significant differences among genotypes, treatments, genotype x treatment for relative cell injury, chlorophyll contents, canopy temperature, boll retention and seed cotton yield per plant. The genetic diversity among 50 genotypes was analyzed through cluster analysis and heat susceptibility index (HSI). The heat tolerant genotypes including FH-Noor, NIAB-545, FH-466, FH-Lalazar, FH-458, NIAB-878, IR-NIBGE-8, Weal-AG-Shahkar, and heat sensitive, i.e., CIM-602, Silky-3, FH-326, SLH-12 and FH-442 were hybridized in line x tester fashion to produce F-1 populations. The breeding materials' populations (40 F-1) revealed higher specific combining ability variances along with dominance variances, decided the non-additive type gene action for all the traits. The best general combining ability effects for most of the traits were displayed by the lines, i.e., FH-Lalazar, NIAB-878 along with testers FH-326 and Silky-3. Specific combining ability effects and better-parent heterosis were showed by the crosses, viz., FH-Lalazar x Silky-3, FH-Lalazar x FH-326, NIAB-878 x Silky-3, and NIAB-878 x FH-326 for seed cotton yield and yield contributing traits under high temperature stress.ConclusionHeterosis breeding should be carried out in the presence of non-additive type gene action for all the studied traits. The best combiner parents with better-parent heterosis may be used in crossing program to develop high yielding cultivars, and hybrids for high temperature stress tolerance.
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页数:17
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共 75 条
  • [31] Plant Density Influences Reproductive Growth, Lint Yield and Boll Spatial Distribution of Cotton
    Khan, Nangial
    Han, Yingchun
    Xing, Fangfang
    Feng, Lu
    Wang, Zhanbiao
    Wang, Guoping
    Yang, Beifang
    Fan, Zhengyi
    Lei, Yaping
    Xiong, Shiwu
    Li, Xiaofei
    Li, Yabing
    [J]. AGRONOMY-BASEL, 2020, 10 (01):
  • [32] Combining ability analysis to identify suitable parents for heterosis in seed cotton yield, its components and lint % in upland cotton
    Khan, Naqib Ullah
    Hassan, Gul
    Kumbhar, Moula Bux
    Marwat, Khan Bahadar
    Khan, Muhammad Azim
    Parveen, Aisha
    Umm-e-Aiman
    Saeed, Muhammad
    [J]. INDUSTRIAL CROPS AND PRODUCTS, 2009, 29 (01) : 108 - 115
  • [33] Khan N, 2014, PAK J AGR SCI, V51, P369
  • [34] Khokhar E. S., 2018, Pakistan Journal of Agricultural Research, V31, P55, DOI 10.17582/journal.pjar/2018/31.1.55.68
  • [35] Parental selection strategy for improving fibre strength and maintaining lint yield in cotton
    Koebernick, Jenny C.
    Liu, Shiming
    Constable, Greg A.
    Stiller, Warwick N.
    [J]. INDUSTRIAL CROPS AND PRODUCTS, 2019, 129 : 585 - 593
  • [36] Screening for high-temperature tolerant cotton cultivars by testing in vitro pollen germination, pollen tube growth and boll retention
    Liu, Zhi
    Yuan, You-Lu
    Liu, Shao-Qing
    Yu, Xiao-Nan
    Rao, Li-Qun
    [J]. JOURNAL OF INTEGRATIVE PLANT BIOLOGY, 2006, 48 (06) : 706 - 714
  • [37] Quantifying Temperature Effects on Cotton Reproductive Efficiency and Fiber Quality
    Lokhande, Suresh
    Reddy, K. Raja
    [J]. AGRONOMY JOURNAL, 2014, 106 (04) : 1275 - 1282
  • [38] Resequencing a core collection of upland cotton identifies genomic variation and loci influencing fiber quality and yield
    Ma, Zhiying
    He, Shoupu
    Wang, Xingfen
    Sun, Junling
    Zhang, Yan
    Zhang, Guiyin
    Wu, Liqiang
    Li, Zhikun
    Liu, Zhihao
    Sun, Gaofei
    Yan, Yuanyuan
    Jia, Yinhua
    Yang, Jun
    Pan, Zhaoe
    Gu, Qishen
    Li, Xueyuan
    Sun, Zhengwen
    Dai, Panhong
    Liu, Zhengwen
    Gong, Wenfang
    Wu, Jinhua
    Wang, Mi
    Liu, Hengwei
    Feng, Keyun
    Ke, Huifeng
    Wang, Junduo
    Lan, Hongyu
    Wang, Guoning
    Peng, Jun
    Wang, Nan
    Wang, Liru
    Pang, Baoyin
    Peng, Zhen
    Li, Ruiqiang
    Tian, Shilin
    Du, Xiongming
    [J]. NATURE GENETICS, 2018, 50 (06) : 803 - +
  • [39] Mahdy EE, 2017, EGYPT J AGRON, V39, P307, DOI 10.21608/agro.2017.1724.1076
  • [40] Genetic association of cotton yield with its component traits in derived primitive accessions crossed by elite upland cultivars using the conditional ADAA genetic model
    McCarty, Jack C.
    Wu, Jixiang
    Jenkins, Johnie N.
    [J]. EUPHYTICA, 2008, 161 (03) : 337 - 352