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Salinity tolerance loci revealed in rice using high-throughput non-invasive phenotyping.

Nadia Al‐Tamimi · Chris Brien · Helena Oakey · Bettina Berger · Stephanie Saadé · Yung Shwen Ho · Sandra M. Schmöckel · Mark Tester · Sónia Negrão

Nature Communications · 17 Nov 2016 · 10.1038/ncomms13342

Abstract

High-throughput phenotyping produces multiple measurements over time, which require new methods of analyses that are flexible in their quantification of plant growth and transpiration, yet are computationally economic. Here we develop such analyses and apply this to a rice population genotyped with a 700k SNP high-density array. Two rice diversity panels, indica and aus, containing a total of 553 genotypes, are phenotyped in waterlogged conditions. Using cubic smoothing splines to estimate plant growth and transpiration, we identify four time intervals that characterize the early responses of rice to salinity. Relative growth rate, transpiration rate and transpiration use efficiency (TUE) are analysed using a new association model that takes into account the interaction between treatment (control and salt) and genetic marker. This model allows the identification of previously undetected loci affecting TUE on chromosome 11, providing insights into the early responses of rice to salinity, in particular into the effects of salinity on plant growth and transpiration.

Code and data availability

The paper's phenotyping data (raw data underlying trait calculation, trait values) and the authors' analysis code (trait production code and GWAS interaction-model code) are publicly deposited in Dryad under doi:10.5061/dryad.3118j, with explicit availability language in the Data availability section.

Codepublic

the codes used in producing the trait values and the code for the interaction model used for GWAS analyses are all available in Dryad ( http://datadryad.org/, doi:10.5061/dryad.3118j ).

Open resource ↗Dryad · doi:10.5061/dryad.3118j · lines:88-149