Abstract
Although it is widely accepted that aquaporins are involved in the regulation of root water uptake, the role of specific isoforms in this process is poorly understood. The mRNA expression and protein level of specific plasma membrane intrinsic proteins (PIPs) were analysed in Zea mays in relation to cell and root hydraulic conductivity. Plants were analysed during the day/night period, under different growth conditions (aeroponics/hydroponics) and in response to short-term osmotic stress applied through polyethylene glycol (PEG). Higher protein levels of ZmPIP1;2, ZmPIP2;1/2;2, ZmPIP2;5 and ZmPIP2;6 during the day coincided with a higher water permeability of root cortex cells during the day compared with night period. Similarly, plants which were grown under aeroponic conditions and which developed a hypodermis ('exodermis') with Casparian bands, effectively forcing more water along a membranous uptake path across roots, showed increased levels of ZmPIP2;5 and ZmPIP1;2 in the rhizodermis and exodermis. When PEG was added to the root medium (2-8h), expression of PIPs and cell water permeability in roots increased. These data support a role of specific PIP isoforms, in particular ZmPIP1;2 and ZmPIP2;5, in regulating root water uptake and cortex cell hydraulic conductivity in maize. Regulation of water flow by specific aquaporins was studied in maize roots. The expression of plasma membrane aquaporins as a function of the diurnal cycle, the growth conditions and in response to short-term osmotic stress was determined. These data were correlated with aquaporin activity deduced by measuring the cell and root hydraulic permeability. A role of specific PIP isoforms in regulating root water uptake and cortex cell hydraulic conductivity in was shown. © 2011 Blackwell Publishing Ltd.
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Hachez, C., Veselov, D., Ye, Q., Reinhardt, H., Knipfer, T., Fricke, W., & Chaumont, F. (2012). Short-term control of maize cell and root water permeability through plasma membrane aquaporin isoforms. Plant, Cell and Environment, 35(1), 185–198. https://doi.org/10.1111/j.1365-3040.2011.02429.x
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