Identification of candidate tolerance genes to low-temperature during maize germination by GWAS and RNA-seqapproaches

被引:6
|
作者
Zhang, Hong [1 ]
Zhang, Jiayue [1 ]
Xu, Qingyu [1 ]
Wang, Dandan [1 ]
Di, Hong [1 ]
Huang, Jun [2 ]
Yang, Xiuwei [1 ]
Wang, Zhoufei [2 ]
Zhang, Lin [1 ]
Dong, Ling [1 ]
Wang, Zhenhua [1 ]
Zhou, Yu [1 ]
机构
[1] Northeast Agr Univ, Coll Agron, Key Lab Germplasm Enhancement Physiol & Ecol Food, Harbin 150030, Heilongjiang, Peoples R China
[2] South China Agr Univ, Guangdong Prov Key Lab Plant Mol Breeding, Guangzhou 510642, Guangdong, Peoples R China
关键词
Maize; Low-temperature; Germination; Genome-wide association study; Candidate genes; QUANTITATIVE TRAIT LOCI; COLD-TOLERANCE; CHILLING TOLERANCE; FREEZING TOLERANCE; PROTEIN-KINASE; MAP KINASE; STRESS; GROWTH; TRANSCRIPTION; ARCHITECTURE;
D O I
10.1186/s12870-020-02543-9
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
BackgroundMaize (Zea mays L.) is one of the main agricultural crops with the largest yield and acreage in the world. However, maize germplasm is very sensitive to low temperatures, mainly during germination, and low temperatures significantly affect plant growth and crop yield. Therefore, the identification of genes capable of increasing tolerance to low temperature has become necessary.ResultsIn this study, fourteen phenotypic traits related to seed germination were used to assess the genetic diversity of maize through genome-wide association study (GWAS). A total of 30 single-nucleotide polymorphisms (SNPs) linked to low-temperature tolerance were detected (-log10(P)>4), fourteen candidate genes were found to be directly related to the SNPs, further additional 68 genes were identified when the screen was extended to include a linkage disequilibrium (LD) decay distance of r(2)>= 0.2 from the SNPs. RNA-sequencing (RNA-seq) analysis was then used to confirm the linkage between the candidate gene and low-temperature tolerance. A total of ten differentially expressed genes (DEGs) (|log(2) fold change (FC)|>= 0.585, P<0.05) were found within the set distance of LD decay (r(2)<greater than or equal to>0.2). Among these genes, the expression of six DEGs was verified using qRT-PCR. Zm00001d039219 and Zm00001d034319 were putatively involved in 'mitogen activated protein kinase (MAPK) signal transduction' and 'fatty acid metabolic process', respectively, based on Gene Ontology (GO) and Kyoto Encyclopedia of Genes and Genomes (KEGG) enrichment analyses. Thus, these genes appeared to be related to low-temperature signal transduction and cell membrane fluidity.ConclusionOverall, by integrating the results of our GWAS and DEG analysis of low-temperature tolerance during germination in maize, we were able to identify a total of 30 SNPs and 82 related candidate genes, including 10 DEGs, two of which were involved in the response to tolerance to low temperature. Functional analysis will provide valuable information for understanding the genetic mechanism of low-temperature tolerance during germination in maize.
引用
收藏
页数:17
相关论文
共 50 条
  • [41] Identification of QTN and candidate genes for Salinity Tolerance at the Germination and Seedling Stages in Rice by Genome-Wide Association Analyses
    Naveed, Shahzad Amir
    Zhang, Fan
    Zhang, Jian
    Zheng, Tian-Qing
    Meng, Li-Jun
    Pang, Yun-Long
    Xu, Jian-Long
    Li, Zhi-Kang
    SCIENTIFIC REPORTS, 2018, 8
  • [42] Genome-wide transcriptomic analysis of response to low temperature reveals candidate genes determining divergent cold-sensitivity of maize inbred lines
    Sobkowiak, Alicja
    Jonczyk, Maciej
    Jarochowska, Emilia
    Biecek, Przemysaw
    Trzcinska-Danielewicz, Joanna
    Leipner, Jorg
    Fronk, Jan
    Sowinski, Pawe
    PLANT MOLECULAR BIOLOGY, 2014, 85 (03) : 317 - 331
  • [43] Identification of candidate genes controlling chilling tolerance of rice in the cold region at the booting stage by BSA-Seq and RNA-Seq
    Guo, Zhenhua
    Cai, Lijun
    Chen, Zhiqiang
    Wang, Ruiying
    Zhang, Lanming
    Guan, Shiwu
    Zhang, Shuhua
    Ma, Wendong
    Liu, Chuanxue
    Pan, Guojun
    ROYAL SOCIETY OPEN SCIENCE, 2020, 7 (11):
  • [44] Genetic overlap of QTL associated with low-temperature tolerance at germination and seedling stage using BILs in soybean
    Zhang, Wen-Bo
    Jiang, Hong-wei
    Qiu, Peng-Cheng
    Liu, Chun-Yan
    Chen, Fei-Long
    Xin, Da-Wei
    Li, Can-Dong
    Hu, Guo-Hua
    Chen, Qing-Shan
    CANADIAN JOURNAL OF PLANT SCIENCE, 2012, 92 (07) : 1381 - 1388
  • [45] Global identification of quantitative trait loci and candidate genes for cold stress and chilling acclimation in rice through GWAS and RNA-seq
    Khatab, Ahmed Adel
    Li, Jianguo
    Hu, Lihua
    Yang, Jiangyi
    Fan, Chuchuan
    Wang, Lingqiang
    Xie, Guosheng
    PLANTA, 2022, 256 (04) : 82
  • [46] POLLEN COLD TOLERANCE OF MAIZE GENOTYPES WITH DIFFERENT ABILITY TO GERMINATE AT LOW-TEMPERATURE
    FRASCAROLI, E
    MAYDICA, 1995, 40 (03): : 229 - 232
  • [47] A genetic linkage map of the Pacific white shrimp (Litopenaeus vannamei): QTL mapping for low-temperature tolerance and growth-related traits and identification of the candidate genes
    Lu, Huijie
    Chen, Wei
    Liu, Fengkun
    Huang, Minwei
    Peng, Kai
    Zhao, Jichen
    Chen, Xiaoying
    Sun, Yuping
    Li, Chaozheng
    Chen, Yihong
    Liu, Zhenxing
    Li, Huo
    Huang, Wen
    AQUACULTURE, 2023, 562
  • [48] Maize Seed Germination Under Low-Temperature Stress Impacts Seedling Growth Under Normal Temperature by Modulating Photosynthesis and Antioxidant Metabolism
    Meng, Aiju
    Wen, Daxing
    Zhang, Chunqing
    FRONTIERS IN PLANT SCIENCE, 2022, 13
  • [49] Identification of stable QTLs and candidate genes involved in anaerobic germination tolerance in rice via high-density genetic mapping and RNA-Seq
    Jing Yang
    Kai Sun
    Dongxiu Li
    Lixin Luo
    Yongzhu Liu
    Ming Huang
    Guili Yang
    Hong Liu
    Hui Wang
    Zhiqiang Chen
    Tao Guo
    BMC Genomics, 20
  • [50] Combining ability and genetic diversity under low-temperature conditions at germination stage of maize (Zea mays L.)
    Zhang, Jiayue
    Li, Yichen
    Zhang, Ziwen
    Di, Hong
    Zhang, Lin
    Wang, Xuerui
    Wang, Zhenhua
    Zhou, Yu
    EUPHYTICA, 2021, 217 (06)