Comparative LD mapping using single SNPs and haplotypes identifies QTL for plant height and biomass as secondary traits of drought tolerance in maize

文献类型: 外文期刊

第一作者: Lu, Yanli

作者: Lu, Yanli;Xu, Jie;Yuan, Zhimin;Lan, Hai;Rong, Tingzhao;Lu, Yanli;Xu, Yunbi;Xu, Yunbi;Shah, Trushar

作者机构:

关键词: biomass;chromosomes;drought;drought resistance;genetic markers;germplasm;haplotypes;linkage;linkage disequilibrium;loci;maize;phenotypes;phenotypic variation;plant height;plant physiology;polymorphism;quantitative traitloci;quantitative traits;single nucleotide polymorphism;subtropics;tropics;yield losses;yields;Zea mays;Zea;Poaceae;Cyperales;monocotyledons;angiosperms;Spermatophyta;plants;eukaryotes;corn;drought tolerance;phenotypic variability;subtropical zones;tropical countries;tropical zones

期刊名称:MOLECULAR BREEDING ( 影响因子:2.589; 五年影响因子:2.75 )

ISSN:

年卷期:

页码:

收录情况: SCI

摘要: Drought often delays developmental events so that plant height and above-ground biomass are reduced, resulting in yield loss due to inadequate photosynthate. In this study, plant height and biomass measured by the Normalized Difference Vegetation Index (NDVI) were used as criteria for drought tolerance. A total of 305 lines representing temperate, tropical and subtropical maize germplasm were genotyped using two single nucleotide polymorphism (SNP) chips each containing 1536 markers, from which 2052 informative SNPs and 386 haplotypes each constructed with two or more SNPs were used for linkage disequilibrium (LD) or association mapping. Single SNP- and haplotype-based LD mapping identified two significant SNPs and three haplotype loci [a total of four quantitative trait loci (QTL)] for plant height under well-watered and water-stressed conditions. For biomass, 32 SNPs and 12 haplotype loci (30 QTL) were identified using NDVIs measured at seven stages under the two water regimes. Some significant SNP and haplotype loci for NDVI were shared by different stages. Comparing significant loci identified by single SNP- and haplotype-based LD mapping, we found that six out of the 14 chromosomal regions defined by haplotype loci each included at least one significant SNP for the same trait. Significant SNP haplotype loci explained much higher phenotypic variation than individual SNPs. Moreover, we found that two significant SNPs (two QTL) and one haplotype locus were shared by plant height and NDVI. The results indicate the power of comparative LD mapping using single SNPs and SNP haplotypes with QTL shared by plant height and biomass as secondary traits for drought tolerance in maize.

分类号: Q94

  • 相关文献

[1]Identification of quantitative trait loci for leaf area and chlorophyll content in maize (Zea mays) under low nitrogen and low phosphorus supply. Cai, Hongguang,Chu, Qun,Yuan, Lixing,Liu, Jianchao,Chen, Xiaohui,Chen, Fanjun,Mi, Guohua,Zhang, Fusuo,Cai, Hongguang.

[2]Molecular Mapping of the Major Resistance Quantitative Trait Locus qHS2.09 with Simple Sequence Repeat and Single Nucleotide Polymorphism Markers in Maize. Weng, Jianfeng,Hao, Zhuanfang,Xie, Chuanxiao,Li, Mingshun,Zhang, Degui,Bai, Li,Liu, Changlin,Zhang, Shihuang,Li, Xinhai,Liu, Xianjun,Wang, Zhenhua,Zhang, Lin,Wang, Jianjun.

[3]QTL mapping for fiber quality traits across multiple generations and environments in upland cotton. Fu-Ding Sun,Jian-Hong Zhang,Shu-Fang Wang,Wan-Kui Gong,Yu-Zhen Shi,Ai-Ying Liu,Jun-Wen Li,Ju-Wu Gong,Hai-Hong Shang,You-Lu Yuan.

[4]Relationships between soil respiration and photosynthesis-related spectral vegetation indices in two cropland ecosystems. Huang, Ni,Niu, Zheng,Zhan, Yulin,Xu, Shiguang,Wu, Chaoyang,Gao, Shuai,Hou, Xuehui,Cai, Dewen,Huang, Ni,Xu, Shiguang,Hou, Xuehui,Cai, Dewen,Tappert, Michelle C.,Huang, Wenjiang.

[5]Genetic diversity among a founder parent and widely grown wheat cultivars derived from the same origin based on morphological traits and microsatellite markers. Li, X. J.,Xu, X.,Yang, X. M.,Li, X. Q.,Liu, W. H.,Gao, A. N.,Li, L. H.,Li, X. J.,Xu, X..

[6]Functional markers in wheat: current status and future prospects. Liu, Yanan,He, Zhonghu,Xia, Xianchun,He, Zhonghu,Appels, Rudi.

[7]Identification and validation of a core set of microsatellite markers for genetic diversity analysis in watermelon, Citrullus lanatus Thunb. Matsum. & Nakai. Zhang, Haiying,Wang, Hui,Guo, Shaogui,Ren, Yi,Gong, Guoyi,Xu, Yong,Weng, Yiqun.

[8]A 90-day safety study of genetically modified rice expressing rhIGF-1 protein in C57BL/6J rats. Tang, Maoxue,Cheng, Wenke,Qian, Lili,Yang, Shulin,Cui, Wentao,Li, Kui,Tang, Maoxue,Cheng, Wenke,Qian, Lili,Yang, Shulin,Cui, Wentao,Li, Kui,Xie, Tingting,Yang, Daichang.

[9]Genetic and cytological analysis of a new spontaneous male sterility in radish (Raphanus sativus L.). Wang, Zhi-Wei,Gao, Lei,Zhou, Yuan,Wang, Ting,Wang, Zhi-Wei,Xiang, Chang Ping,Liu, Hai Zhou,Mei, Shi Yong.

[10]Phylogenetic relationships of wild roses in China based on nrDNA and matK data. Qiu, Xianqin,Zhang, Hao,Wang, Qigang,Jian, Hongying,Yan, Huijun,Zhang, Ting,Wang, Jihua,Tang, Kaixue.

[11]Seed micromorphology and germination characteristics of wild and cultivated pepper strains. Zhang Zhuqing,Dai Xiongze,Zou Xuexiao,Ou Lijun,Ou Lijun.

[12]Mycangial fungus benefits the development of a leaf-rolling weevil, Euops chinesis. Ding, Jianqing,Li, Xiaoqiong,Guo, Wenfeng.

[13]Inheritance of anthocyanin content in the ripe berries of a tetraploid x diploid grape cross population. Liang, Zhenchang,Li, Shaohua,Liang, Zhenchang,Wu, Benhong,Liang, Zhenchang,Wu, Benhong,Sang, Min,Ma, Aihong,Zhao, Shengjian,Zhong, Gan-Yuan.

[14]Temperature-Dependent Survival of Turnip Crinkle Virus-Infected Arabidopsis Plants Relies on an RNA Silencing-Based Defense That Requires DCL2, AG02, and HEN1. Zhang, Xiuchun,Zhang, Xiaofeng,Singh, Jasleen,Qu, Feng,Zhang, Xiuchun,Zhang, Xiaofeng,Li, Dawei.

[15]Agricultural vulnerability and adaptation in developing countries: the Asia-Pacific region. Luo, QY,Lin, E.

[16]Interspecific complementary and competitive interactions between intercropped maize and faba bean. Li, L,Yang, SC,Li, XL,Zhang, FS,Christie, P.

[17]Microarray-based screening of differentially expressed genes in peanut in response to Aspergillus parasiticus infection and drought stress. Luo, M,Liang, XQ,Dang, P,Holbrook, CC,Bausher, MG,Lee, RD,Guo, BZ.

[18]Haplotypic Structure and Allelic Variation of rab17, an ABA-Responsive Gene, in a Mini Core Set of Chinese Diversified Maize Inbred Lines. Yu Yong-tao,Wang Rong-huan,Shi Yun-su,Song Yan-chun,Wang Tian-yu,Li Yu,Yu Yong-tao. 2010

[19]Two novel species of Vagicola (Phaeosphaeriaceae) from Italy. Jayasiri, S. C.,Wanasinghe, D. N.,Hyde, K. D.,Wanasinghe, D. N.,Hyde, K. D.,Ariyawansa, H. A.,Jones, E. B. G.,Bahkali, A. H.,Hyde, K. D.,Kang, J. C.,Promputtha, I,Bhat, J.,Bhat, J.,Camporesi, E.,Camporesi, E.,Camporesi, E.. 2015

[20]Development of STS markers and establishment of multiplex PCR for Glu-A3 alleles in common wheat (Triticum aestivum L.). Wang, Linhai,Xia, Xianchun,He, Zhonghu,Li, Genying,Pena, Roberto J.,He, Zhonghu.

作者其他论文 更多>>