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bioRxiv · 10.1101/2022.10.16.512409

Anatomical drivers of stomatal conductance in sorghum lines with different leaf widths grown under different temperatures

Abstract

O_LIImprovements in leaf water use efficiency (iWUE) can maintain crop productivity in water limited environments under rising temperatures. We investigated the leaf anatomical traits which underpin our recently identified link between leaf width (LW) and iWUE. C_LIO_LITen sorghum lines with varying LW were grown under three temperatures to expand the range of variation of both LW and gas exchange rates. Leaf gas exchange, surface morphology and cross-sectional anatomy were measured and analysed using structural equations modelling. C_LIO_LINarrower leaves had lower stomatal conductance (gs) and higher iWUE across growth temperatures. They also had smaller intercellular airspaces, stomatal size, percentage of open stomatal aperture relative to maximum, hydraulic pathway, mesophyll thickness, and leaf mass per area. Structural modelling revealed a developmental association among leaf anatomical traits that underpinned gs variation in sorghum. C_LIO_LIGrowing temperature and LW both impacted leaf gas exchange rates, but only LW directly impacted leaf anatomy. Wider leaves may be more productive under well-watered conditions, but consume more water for growth and development, which is detrimental under water stress. C_LI HighlightCoordination between leaf width and leaf anatomy underpins stomatal conductance variation in sorghum grown under different temperatures.

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BibTeXRIS

Al-Salman, Y., Cano, F. J., Pan, L., Koller, F., Pineiro, J., Jordan, D., Ghannoum, O.. 2022-10-20. Anatomical drivers of stomatal conductance in sorghum lines with different leaf widths grown under different temperatures. https://doi.org/10.1101/2022.10.16.512409

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