Antisense reduction in NADP-ME in the C4 species Flaveria bidentis alters stomatal sensitivity to intercellular [CO2].
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Stomata have the crucial role of balancing the uptake of CO2 for photosynthesis and water loss via transpiration by adjusting their aperture. In C3 plants, coordination between photosynthesis and stomatal conductance can be disrupted by mutations in Calvin-Benson-Bassham (CBB) cycle expression, but it is not clear whether the disruption of the C4 carbon concentrating mechanism would have similar effects. In this study, it was hypothesized that perturbing the C4 cycle, resulting in reduced carbon flux into the bundle sheath cells and overall net CO2 assimilation rates, may alter stomatal regulation. To test this hypothesis, we performed gas exchange measurements on transgenic Flaveria bidentis plants carrying an antisense construct leading to reduced nicotinamide adenine dinucleotide phosphate (NADP)-malic enzyme (NADP-ME) activity. Stomatal conductance was unaltered in the antisense plants at ambient CO2 levels. However, Ci was significantly increased. When measurements were instead performed at common Ci, stomatal conductance was significantly higher in the antisense lines. These results demonstrate that disruption of the C4 cycle via reduced NADP-ME activity in F. bidentis leads to altered stomatal sensitivity to Ci.
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Publication status: Published
Funder: Department of Science and Technology Science Education Institute ‐ Philippines Foreign Graduate Scholarship Program
Funder: Gatsby foundation New lecturer start up
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1469-8137

