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bioRxiv · 10.1101/2021.08.21.457180

Physiological and genetic drivers underpinning canopy development are associated with durum wheat yield in rainfed environments

Abstract

New durum wheat (Triticum turgidum L. ssp. Durum) cultivars with improved adaptation to variable rainfall environments are required to sustain productivity in the face of climate change. Physiological traits related to canopy development underpin the production of biomass and yield, as they interact with solar radiation and affect the timing of water use throughout the growing season. This study explored the temporal canopy dynamics of durum wheat using a nested-association mapping population evaluated for longitudinal normalized difference vegetation index (NDVI) measurements. Association mapping was performed to identify quantitative trait loci (QTL) for time-point NDVI and spline-smoothed NDVI trajectory traits. Yield effects associated with QTL for canopy development were investigated using data from four rainfed field trials. Four QTL associated with slower canopy closure, improved yield in specific environments, and notably, were not associated with a yield penalty in any environment. This was likely due to optimised timing of water-use and pleiotropic effects on yield component traits, including spike number and spike length. Overall, this study suggests that slower canopy closure is beneficial for durum wheat production in rainfed environments. Selection for traits or loci associated with canopy development may improve yield stability of durum wheat in water limited environments.

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BibTeXRIS

Kang, Y., Haeften, S. V., Bustos-Korts, D., Vukasovic, S., Khan, S. U., Christopher, J., Chenu, K., Able, J. A., Smith, M. R., Voss-Fels, K. P., Potgieter, A. B., Jordan, D. R., Borrell, A. K., Alahmad, S., Hickey, L. T.. 2021-08-21. Physiological and genetic drivers underpinning canopy development are associated with durum wheat yield in rainfed environments. https://doi.org/10.1101/2021.08.21.457180

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