Integrating Image-Based Phenomics and Association Analysis to Dissect the Genetic Architecture of Temporal Salinity Responses in Rice

被引:117
作者
Campbell, Malachy T. [1 ]
Knecht, Avi C. [2 ]
Berger, Bettina [4 ]
Brien, Chris J. [5 ]
Wang, Dong [3 ]
Walia, Harkamal [1 ]
机构
[1] Univ Nebraska, Dept Agron & Hort, Lincoln, NE 68583 USA
[2] Univ Nebraska, Holland Comp Ctr, Lincoln, NE 68583 USA
[3] Univ Nebraska, Dept Stat, Lincoln, NE 68583 USA
[4] Univ Adelaide, Australian Plant Phen Facil, Plant Accelerator, Urrbrae, SA 5064, Australia
[5] Univ S Australia, Phen & Bioinformat Res Ctr, Adelaide, SA 5001, Australia
基金
美国国家科学基金会;
关键词
QUANTITATIVE TRAIT LOCUS; GENOME-WIDE ASSOCIATION; SALT TOLERANCE; WATER TRANSPORT; PLANT-GROWTH; TRANSCRIPTION FACTOR; ARABIDOPSIS ROOTS; POTASSIUM CHANNEL; DROUGHT TOLERANCE; NA+ EXCLUSION;
D O I
10.1104/pp.15.00450
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Salinity affects a significant portion of arable land and is particularly detrimental for irrigated agriculture, which provides one-third of the global food supply. Rice (Oryza sativa), the most important food crop, is salt sensitive. The genetic resources for salt tolerance in rice germplasm exist but are underutilized due to the difficulty in capturing the dynamic nature of physiological responses to salt stress. The genetic basis of these physiological responses is predicted to be polygenic. In an effort to address this challenge, we generated temporal imaging data from 378 diverse rice genotypes across 14 d of 90 mM NaCl stress and developed a statistical model to assess the genetic architecture of dynamic salinity-induced growth responses in rice germplasm. A genomic region on chromosome 3 was strongly associated with the early growth response and was captured using visible range imaging. Fluorescence imaging identified four genomic regions linked to salinity-induced fluorescence responses. A region on chromosome 1 regulates both the fluorescence shift indicative of the longer term ionic stress and the early growth rate decline during salinity stress. We present, to our knowledge, a new approach to capture the dynamic plant responses to its environment and elucidate the genetic basis of these responses using a longitudinal genome-wide association model.
引用
收藏
页码:1476 / U1697
页数:61
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