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Caine, R. S.

Publications and source records attributed to Caine, R. S..

3 recordsLinked to original sources

Mapping plant-scale variation in crop physiological traits and water fluxes

Nitrogen (N) is a vital plant element, affecting plant physiological processes, carbon and water fluxes and ultimately crop yields. However, N uptake by crops can vary over fine spatiotemporal scales, and optimising the application of N-fertiliser to maximise crop performance is challenging. To investigate the potential of spatially mapping the impact of N fertiliser application on crop physiological performance and yield, we leverage both optical and thermal data sampled from drone platforms and ground-level leaf measurements, across a range of different N, Sulphur (S) and sucrose treatments in winter wheat. Using leaf level hyperspectral reflectance data, leaf chlorophyll content was accurately modelled across fertiliser treatments via partial least squares regression (PLSR; R2= 0.93, P < 0.001). Leaf photosynthetic capacity (Vcmax) exhibited a strong linear relationship with leaf chlorophyll (R2 = 0.77; P < 0.001). Using drone-acquired MERIS terrestrial chlorophyll index (MTCI) values as a proxy for leaf chlorophyll (R2 = 0.76; P < 0.001), Vcmax was spatially mapped at the centimetre-scale. Thermal drone and ground measurements demonstrated that N application leads to cooler leaf temperatures, which led to a strong relationship with ground-measured leaf stomatal conductance (R2= 0.6; P < 0.01). Final grain yield was most accurately predicted by optical reflectance (MTCI, R2 = 0.94; P < 0.001). Precise retrieval of leaf-level crop performance indicators from drones establishes significant potential for optimising fertiliser application, to reduce environmental costs and improve yields.

plant biology↗

Future heatwave conditions inhibit CO2-induced stomatal closure in wheat

Rising atmospheric CO2 concentrations are driving ongoing climatic changes, leading to agricultural crops increasingly experiencing extreme weather events1. Stomata serve as gatekeepers on plant leaves, regulating both CO2 capture for photosynthesis and the concomitant release of water. At higher CO2 concentrations or higher vapour pressure deficit (VPD), stomatal pores narrow, reducing stomatal conductance to water vapour (gsw) and transpiration (E)2-6. Increasing temperatures and/or nitrogen fertilisation promote an opposite stomatal response, enhancing gsw and E7,8. With atmospheric CO2 concentration, temperature and VPD predicted to rise throughout this century1, it is unclear how crops will modify stomatal gaseous exchanges, particularly under differing N-fertilisation regimes. Here, we show in wheat (Triticum aestivum), that elevated CO2 does not reduce gsw or E during heatwaves when VPD is high, instead plant water usage increases. High-VPD heatwave events also impact stomatal responsiveness to N-fertiliser application, prompting significantly higher gas exchange contributions from abaxial leaf surfaces, irrespective of CO2 growth conditions. Dynamic stomatal responsiveness to light and high CO2 are also attenuated during heatwaves in a CO2-independent manner. Taken together, our data suggests that future wheat crops will use significantly more water during heatwaves than might be expected, which has substantial implications for future global food security.

plant biology↗

The Influences of Stomatal Size and Density on Rice Drought, Salinity and VPD Resilience

O_LIA warming climate coupled with reductions in water availability and rising salinity are increasingly affecting rice yields (Oryza sativa L.). Elevated temperatures are causing vapour pressure deficit (VPD) rises, leading to stomata closure, further reducing plant productivity and cooling. It is unclear which conformation of stomatal size (SS) and stomatal density (SD) will best suit these future environmental extremes. C_LIO_LITo understand the influence of stomatal characteristics on rice abiotic stress tolerance, we screened the stomatal characteristics of 72 traditionally-bred varieties. We found significant variation in SS, SD and maximal stomatal conductance (gsmax) but did not identify any varieties with SD and gsmax as low as the genetically manipulated stomatal development mutant OsEPF1oe. C_LIO_LITraditionally-bred varieties with high SD and small SS (resulting in high gsmax) typically had lower biomasses, and these plants were more resilient to drought than low SD and large SS plants, which were physically larger. None of the varieties tested were as resilient to drought or salinity as low SD OsEPF1oe mutants. High SD and small SS rice displayed faster stomatal closure during rising VPD, but photosynthesis and plant cooling were reduced. C_LIO_LICompromises will be required when choosing rice SS and SD to tackle multiple future environmental stresses. C_LI

plant biology↗