Quantitative Trait Loci for Cold Tolerance in Chickpea

被引:13
|
作者
Mugabe, Deus [1 ]
Coyne, Clarice J. [2 ]
Piaskowski, Julia [3 ]
Zheng, Ping [4 ]
Ma, Yu [4 ]
Landry, Erik [2 ]
McGee, Rebecca [5 ]
Main, Doreen [4 ]
Vandemark, George [5 ]
Zhang, Hongbin [6 ]
Abbo, Shahal [7 ]
机构
[1] Washington State Univ, Dept Crops & Soil Sci, Pullman, WA 99164 USA
[2] Washington State Univ, USDA ARS Plant Germplasm Intro & Testing, Pullman, WA 99164 USA
[3] Univ Idaho, Coll Agr & Life Sci, Moscow, ID 83844 USA
[4] Washington State Univ, Dept Hort, Pullman, WA 99164 USA
[5] USDA ARS Grain Legume Genet & Physiol, Pullman, WA 99164 USA
[6] Texas A&M Univ, Dept Soil & Crop Sci, College Stn, TX 77843 USA
[7] Hebrew Univ Jerusalem, Fac Agr, Rehovot, Israel
关键词
DRAFT GENOME SEQUENCE; VERNALIZATION RESPONSE; FREEZING TOLERANCE; FROST TOLERANCE; WINTER HARDINESS; GENETIC-ANALYSIS; MOLECULAR-BASIS; FLOWERING TIME; FUSARIUM-WILT; SEED SIZE;
D O I
10.2135/cropsci2018.08.0504
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
Fall-sown chickpea (Cicer arietinum L.) yields are often double those of spring-sown chickpea in regions with Mediterranean climates that have mild winters. However, winter kill can limit the productivity of fall-sown chickpea. Developing cold-tolerant chickpea would allow the expansion of the current geographic range where chickpea is grown and also improve productivity. The objective of this study was to identify the quantitative trait loci (QTL) associated with cold tolerance in chickpea. An interspecific recombinant inbred line population of 129 lines derived from a cross between ICC 4958, a cold-sensitive desi type (C. arietinum), and PI 489777, a cold-tolerant wild relative (C. reticulatum Ladiz), was used in this study. The population was phenotyped for cold tolerance in the field over four field seasons (September 2011-March 2015) and under controlled conditions two times. The population was genotyped using genotyping-by-sequencing, and an interspecific genetic linkage map consisting of 747 single nucleotide polymorphism (SNP) markers, spanning a distance of 393.7 cM, was developed. Three significant QTL were found on linkage groups (LGs) 1B, 3, and 8. The QTL on LGs 3 and 8 were consistently detected in six environments with logarithm of odds score ranges of 5.16 to 15.11 and 5.68 to 23.96, respectively. The QTL CT Ca-3.1 explained 7.15 to 34.6% of the phenotypic variance in all environments, whereas QTL CT Ca-8.1 explained 11.5 to 48.4%. The QTL-associated SNP markers may become useful for breeding with further fine mapping for increasing cold tolerance in domestic chickpea.
引用
收藏
页码:573 / 582
页数:10
相关论文
共 50 条
  • [21] Quantitative Trait Loci for Chloride Tolerance in 'Osage' Soybean
    Zeng, Ailan
    Lara, Laura
    Chen, Pengyin
    Luan, Xiaoyan
    Hancock, Floyd
    Korth, Ken
    Brye, Kristofer
    Pereira, Andy
    Wu, Chengjun
    CROP SCIENCE, 2017, 57 (05) : 2345 - 2353
  • [22] Mapping of quantitative trait loci for cold tolerance at the early seedling stage in landrace rice Xiang 743
    Wenqiang Liu
    Tingting Lu
    Yongchao Li
    Xiaowu Pan
    Yonghong Duan
    Jun Min
    Xiqin Fu
    Xinnian Sheng
    Junzhi Xiao
    Sanxiong Liu
    Jiang Tan
    Yi Yao
    Xiaoxiang Li
    Euphytica, 2015, 201 : 401 - 409
  • [23] Mapping of quantitative trait loci for cold tolerance at the early seedling stage in landrace rice Xiang 743
    Liu, Wenqiang
    Lu, Tingting
    Li, Yongchao
    Pan, Xiaowu
    Duan, Yonghong
    Min, Jun
    Fu, Xiqin
    Sheng, Xinnian
    Xiao, Junzhi
    Liu, Sanxiong
    Tan, Jiang
    Yao, Yi
    Li, Xiaoxiang
    EUPHYTICA, 2015, 201 (03) : 401 - 409
  • [24] Identification of quantitative trait loci controlling cold tolerance at the reproductive stage in Yunnan landrace of rice, Kunmingxiaobaigu
    Dai, LY
    Lin, XH
    Ye, CR
    Ise, KZ
    Saito, K
    Kato, A
    Xu, FR
    Yu, TQ
    Zhang, DP
    BREEDING SCIENCE, 2004, 54 (03) : 253 - 258
  • [25] Identification of quantitative trait loci for cold-tolerance of photosynthesis in maize (Zea mays L.)
    Fracheboud, Y
    Ribaut, JM
    Vargas, M
    Messmer, R
    Stamp, P
    JOURNAL OF EXPERIMENTAL BOTANY, 2002, 53 (376) : 1967 - 1977
  • [26] Identification of quantitative trait loci for cadmium tolerance and accumulation in wheat
    Ci, Dunwei
    Jiang, Dong
    Li, Sishen
    Wollenweber, Bernd
    Dai, Tingbo
    Cao, Weixing
    ACTA PHYSIOLOGIAE PLANTARUM, 2012, 34 (01) : 191 - 202
  • [27] Quantitative Trait Loci Associated with Drought Tolerance in Brachypodium distachyon
    Jiang, Yiwei
    Wang, Xicheng
    Yu, Xiaoqing
    Zhao, Xiongwei
    Luo, Na
    Pei, Zhongyou
    Liu, Huifen
    Garvin, David F.
    FRONTIERS IN PLANT SCIENCE, 2017, 8
  • [28] Mapping of quantitative trait loci for seedling salt tolerance in maize
    Luo, Meijie
    Zhang, Yunxia
    Chen, Kuan
    Kong, Mengsi
    Song, Wei
    Lu, Baishan
    Shi, Yaxing
    Zhao, Yanxin
    Zhao, Jiuran
    MOLECULAR BREEDING, 2019, 39 (05)
  • [29] Quantitative Trait Loci Associated with Drought Tolerance in Creeping Bentgrass
    Merewitz, Emily
    Belanger, Faith
    Warnke, Scott
    Huang, Bingru
    Bonos, Stacy
    CROP SCIENCE, 2014, 54 (05) : 2314 - 2324
  • [30] Identification of Aluminum Tolerance Quantitative Trait Loci in Tetraploid Alfalfa
    Khu, Dong-Man
    Reyno, Rafael
    Han, Yuanhong
    Zhao, Patrick X.
    Bouton, Joseph H.
    Brummer, E. Charles
    Monteros, Maria J.
    CROP SCIENCE, 2013, 53 (01) : 148 - 163