Stomatal movements control CO₂ uptake for photosynthesis and water loss through transpiration, and therefore play a key role in plant productivity and water use efficiency. The predicted doubling of global water usage by 2030 mean that stomatal behaviour is central to current efforts to increase photosynthesis and crop yields, particularly under conditions of reduced water availability. In the field, slow stomatal responses to dynamic environmental conditions add a temporal dimension to gaseous fluxes between the leaf and atmosphere. Here, we review recent work on the rapidity of stomatal responses and present some of the possible anatomical and biochemical mechanisms that influence the rapidity of stomatal movements
Intrinsic water use efficiency (Wi), the ratio of net CO2 assimilation (A) over stomatal conductance...
Water use efficiency (WUE) is considered as a determinant of yield under stress and a component of c...
Stomata are the primary gatekeepers for CO₂ uptake for photosynthesis and water loss via transpirati...
Stomata control gaseous exchange between the leaf and bulk atmosphere limiting CO2 uptake for photos...
Both photosynthesis (A) and stomatal conductance (g s ) respond to changing irradiance, yet stomatal...
In order for plants to use water efficiently, stomata must ensure an appropriate balance between CO2...
AbstractThe control of gaseous exchange between the leaf and bulk atmosphere by stomata governs CO2 ...
The control of gaseous exchange between the leaf and bulk atmosphere by stomata governs CO2 uptake f...
Intrinsic water use efficiency (Wi), the ratio of net CO2 assimilation (A) over stomatal conductance...
Dynamic light conditions require continuous adjustments of stomatal aperture. The kinetics of stomat...
Intrinsic water use efficiency (Wi), the ratio of net CO2 assimilation (A) over stomatal conductance...
Plant acclimation to growth light environment has been studied extensively, however, the majority of...
AbstractIntrinsic water use efficiency (Wi), the ratio of net CO2 assimilation (A) over stomatal con...
Although stomata typically occupy only a small portion of the leaf surface (0.3-5%), stomata control...
Although the signalling pathway of blue light (BL)-dependent stomatal opening is well characterized,...
Intrinsic water use efficiency (Wi), the ratio of net CO2 assimilation (A) over stomatal conductance...
Water use efficiency (WUE) is considered as a determinant of yield under stress and a component of c...
Stomata are the primary gatekeepers for CO₂ uptake for photosynthesis and water loss via transpirati...
Stomata control gaseous exchange between the leaf and bulk atmosphere limiting CO2 uptake for photos...
Both photosynthesis (A) and stomatal conductance (g s ) respond to changing irradiance, yet stomatal...
In order for plants to use water efficiently, stomata must ensure an appropriate balance between CO2...
AbstractThe control of gaseous exchange between the leaf and bulk atmosphere by stomata governs CO2 ...
The control of gaseous exchange between the leaf and bulk atmosphere by stomata governs CO2 uptake f...
Intrinsic water use efficiency (Wi), the ratio of net CO2 assimilation (A) over stomatal conductance...
Dynamic light conditions require continuous adjustments of stomatal aperture. The kinetics of stomat...
Intrinsic water use efficiency (Wi), the ratio of net CO2 assimilation (A) over stomatal conductance...
Plant acclimation to growth light environment has been studied extensively, however, the majority of...
AbstractIntrinsic water use efficiency (Wi), the ratio of net CO2 assimilation (A) over stomatal con...
Although stomata typically occupy only a small portion of the leaf surface (0.3-5%), stomata control...
Although the signalling pathway of blue light (BL)-dependent stomatal opening is well characterized,...
Intrinsic water use efficiency (Wi), the ratio of net CO2 assimilation (A) over stomatal conductance...
Water use efficiency (WUE) is considered as a determinant of yield under stress and a component of c...
Stomata are the primary gatekeepers for CO₂ uptake for photosynthesis and water loss via transpirati...