Maize leaf temperature responses to drought: Thermal imaging and quantitative trait loci (QTL) mapping

文献类型: 外文期刊

第一作者: Liu, Ya

作者: Liu, Ya;Subhash, Chander;Yan, Jianbin;Li, Jiansheng;Liu, Ya;Zhao, Jiuran;Song, Chunpeng

作者机构:

关键词: Infrared thermography;Leaf temperature;Drought tolerance;QTL;Maize

期刊名称:ENVIRONMENTAL AND EXPERIMENTAL BOTANY ( 影响因子:5.545; 五年影响因子:5.99 )

ISSN:

年卷期:

页码:

收录情况: SCI

摘要: Leaf temperature has been shown to vary when plants are subjected to water stress conditions. Recent advances in infrared thermography have increased the probability of recording drought tolerant responses more accurately. The aims of this study were to identify the effects of drought on leaf temperature using infrared thermography. Furthermore, the genomic regions responsible for the expression of leaf temperature variation in maize seedlings (Zea mays L.) were explored. The maize inbred lines Zong3 and 87-1 were evaluated using infrared thermography and exhibited notable differences in leaf temperature response to water stress. Correlation analysis indicated that leaf temperature response to water stress played an integral role in maize biomass accumulation. Additionally, a mapping population of 187 recombinant inbred lines (RILs) derived from a cross between Zong3 and 87-1 was constructed to identify quantitative trait loci (QTL) responsible for physiological traits associated with seedling water stress. Leaf temperature differences (LTD) and the drought tolerance index (DTI) of shoot fresh weight (SFW) and shoot dry weight (SDW) were the traits evaluated for QTL analysis in maize seedlings. A total of nine QTL were detected by composite interval mapping (CIM) for the three traits (LTD, RSFW and RSDW). Two co-locations responsible for both RSFW and RSDW were detected on chromosomes 1 and 2, respectively, which showed common signs with their trait correlations. Another co-location was detected on chromosome 9 between LTD and shoot biomass, which provided genetic evidence that leaf temperature affects biomass accumulation. Additionally, the utility of a thermography system for drought tolerance breeding in maize was discussed.

分类号: Q94

  • 相关文献

[1]Numerous genetic loci identified for drought tolerance in the maize nested association mapping populations. Li, Chunhui,Li, Yongxiang,Wu, Xun,Zhang, Dengfeng,Shi, Yunsu,Song, Yanchun,Wang, Tianyu,Li, Yu,Sun, Baocheng,Liu, Cheng,Buckler, Edward S.,Buckler, Edward S.,Zhang, Zhiwu. 2016

[2]Simple nonlinear model for the relationship between maize yield and cumulative water amount. Liu Cheng,Yang Xiao-hong,Li Jian-sheng,Liu Cheng,Sun Bao-cheng,Tang Huai-jun,Xie Xiao-qing,Wang Tian-yu,Li Yu,Zhang Deng-feng,Shi Yun-su,Song Yan-chun. 2017

[3]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

[4]Co-expression of genes ApGSMT2 and ApDMT2 for glycinebetaine synthesis in maize enhances the drought tolerance of plants. He, Chunmei,Liu, Qiang,Liu, Tieshan,Liu, Chunxiao,Wang, Liming,Zhang, Juren,He, Ying,Zhang, Juren.

[5]Comparative LD mapping using single SNPs and haplotypes identifies QTL for plant height and biomass as secondary traits of drought tolerance in maize. Lu, Yanli,Xu, Jie,Yuan, Zhimin,Lan, Hai,Rong, Tingzhao,Lu, Yanli,Xu, Yunbi,Xu, Yunbi,Shah, Trushar.

[6]Potential role of D-myo-inositol-3-phosphate synthase and 14-3-3 genes in the crosstalk between Zea mays and Rhizophagus intraradices under drought stress. Li, Tao,Sun, Yuqing,Xu, Lijiiao,Hu, Yajun,Hao, Zhipeng,Zhang, Xin,Li, Hong,Chen, Baodong,Ruan, Yuan,Hu, Yajun,Wang, Youshan,Yang, Liguo.

[7]QTL mapping of resistance to Sporisorium reiliana in maize. Lubberstedt, T,Xia, XC,Tan, G,Liu, X,Melchinger, AE. 1999

[8]QTL mapping of coleorhiza length in maize (Zea mays L.) under two germination environmental conditions. Jiang, Xuwen,Tian, Baohua,Zhang, Weimin,Wang, Guoying,Wang, Jianhua,Jiang, Xuwen,Tian, Baohua,Zhang, Weimin,Wang, Guoying,Wang, Jianhua,Wang, Guoying. 2011

[9]High-resolution mapping and characterization of qRgls2, a major quantitative trait locus involved in maize resistance to gray leaf spot. Xu, Ling,Zhang, Yan,Zhu, Mang,Zhong, Tao,Xu, Mingliang,Shao, Siquan,Chen, Wei,Tan, Jing,Fan, Xingming. 2014

[10]Mapping of QTL conferring resistance to northern corn leaf blight using high-density SNPs in maize. Chen, Gengshen,Yan, Jianbing,Ding, Junqiang,Wang, Xiaoming,Long, Shusheng,Jaqueth, Jennifer,Li, Bailin,Ding, Junqiang,Ding, Junqiang.

[11]Epistatic and QTLxenvironment interaction effects on leaf area-associated traits in maize. Wei, Xiaomin,Wang, Xiaobo,Zhou, Jinlong,Shi, Yong,Wang, Huitao,Dou, Dandan,Song, Xiaoheng,Li, Guohui,Ku, Lixia,Chen, Yanhui,Wei, Xiaomin,Wang, Xiaobo,Zhou, Jinlong,Shi, Yong,Wang, Huitao,Dou, Dandan,Song, Xiaoheng,Li, Guohui,Ku, Lixia,Chen, Yanhui,Wei, Xiaomin,Guo, Shulei.

[12]Genetic and Quantitative Trait Locus Analysis of Cell Wall Components and Forage Digestibility in the Zheng58 x HD568 Maize RIL Population at Anthesis Stage. Li, Kun,Wang, Hongwu,Hu, Xiaojiao,Ma, Feiqian,Wu, Yujin,Wang, Qi,Liu, Zhifang,Huang, Changling. 2017

[13]Genome-wide meta-analysis of maize heterosis reveals the potential role of additive gene expression at pericentromeric loci. Thiemann, Alexander,Seifert, Felix,Scholten, Stefan,Fu, Junjie,Grant-Downton, Robert T.,Schrag, Tobias A.,Melchinger, Albrecht E.,Scholten, Stefan,Pospisil, Heike,Frisch, Matthias. 2014

[14]Quantitative trait loci mapping of yield and related traits using a high-density genetic map of maize. Chen, Lin,Li, Chunhui,Li, Yongxiang,Song, Yanchun,Zhang, Dengfeng,Wang, Tianyu,Li, Yu,Shi, Yunsu.

[15]Use of infrared thermography to assess laying-hen feather coverage. Zhao, Y.,Xin, H.,Dong, B.,Dong, B.. 2013

[16]A Review on Leaf Temperature Sensor: Measurement Methods and Application. Yu, Lu,Wang, Wenli,Zhang, Xin,Zhang, Xin,Zheng, Wengang. 2016

[17]Evaluation of canopy transpiration rate by applying a plant hormone "abscisic acid". Yasutake, Daisuke,Kitano, Masaharu,Kobayashi, Tetsuo,Hidaka, Kota,Wajima, Takahiro,He, Wenjun. 2006

[18]Genetic gains in grain yield, net photosynthesis and stomatal conductance achieved in Henan Province of China between 1981 and 2008. Xia, X. C.,He, Z. H.,Zheng, T. C.,Yin, G. H.,Wang, L. N.,Han, Y. L.,Huang, F.,Tang, J. W.,Zhang, X. K.,Chen, L.,He, Z. H..

[19]Mapping QTLs for drought tolerance in an F-2:3 population from an inter-specific cross between Gossypium tomentosum and Gossypium hirsutum. J.Y. Zheng,G. Oluoch,M.K. Riaz Khan,X.X. Wang,X.Y. Cai,Z.L. Zhou,C.Y. Wang,Y.H. Wang,X.Y. Li,F. Liu,K.B. Wang. 2016

[20]Construction and characterization of a bacterial artificial chromosome library for the allotetraploid Gossypium tomentosum. F. Liu,Y.H. Wang,H.Y. Gao,C.Y. Wang,Z.L. Zhou,X.Y. Cai,X.X. Wang,Z.S. Zhang,K.B. Wang. 2015

作者其他论文 更多>>