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Tulva, I.

Publications and source records attributed to Tulva, I..

4 recordsLinked to original sources

Low relative air humidity leads to smaller, denser stomata and higher stomatal ratios in Arabidopsis

Atmospheric dryness is increasing, bringing about decreases in plant productivity. Stomatal pores mediate plant gas-exchange with the environment, balancing CO2 uptake with water loss. Stomatal anatomical and physiological traits respond to changes in environment, potentially affecting plant growth and yield under future environments. Designing stomatal patterns to suit future climate conditions has the potential to improve plant water use efficiency or productivity. By combining mutations in signaling pathways that control stomatal development and apertures, we designed plants that combine high stomatal densities with more open stomata and show that respective mutations independently affect stomatal conductance and density. Analyses of adaxial and abaxial stomatal conductances showed that in Arabidopsis, adaxial stomata are responsible for a significant proportion of leaf gas-exchange. Adaxial and abaxial stomatal physiology were largely similarly affected by mutations in stomatal regulation pathways but adaxial stomata tended to be relatively more closed than abaxial stomata. We show that growth under low relative air humidity leads to higher stomatal densities and smaller stomata. Stomatal development in the adaxial and abaxial leaf surface responded differently to dry air conditions: adaxial stomatal index increased, whereas abaxial stomatal index decreased. Stomatal ratio increased under dry air conditions, leading to a higher degree of amphistomaty. Plant growth was independently suppressed by dry air and high stomatal density and index. Our results suggest that acclimation to decreasing air humidity leads to stomatal anatomical adjustments that help to maximize plant gas-exchange potential under conditions where water supply may be limited and sporadic.

plant biology↗

Higher adaxial stomatal density is associated with lower grain yield in spring wheat

In land plants, stomatal pores on leaf surfaces developed to control gas exchange between leaf and surrounding air, but also to enable nutrient uptake and leaf cooling. Traits such as stomatal density (SD), guard cell size, stomatal distribution between the upper (adaxial) and lower (abaxial) leaf surfaces (stomatal ratio), and stomatal aperture width exhibit notable variation across different genotypes and environments. These traits influence leaf photosynthesis, water loss, growth, productivity, and pathogen susceptibility. Here, we studied different stomatal traits of spring wheat flag leaves and their relationship with grain yield in field experiments during 2022-2023. Significant genotypic variation among adaxial and abaxial SDs and stomatal ratios was detected, whereas stomatal conductance was mostly affected by annual differences in weather. A strong negative relationship between adaxial stomatal density and grain yield was detected under all conditions, when abiotic factors (water stress or nutrient limitation) resulted in yield losses, whereas under favourable conditions, there was no significant relationship between adaxial stomatal density and grain yield. The effects of leaf surface-specific traits on yield are often overlooked in physiological and breeding experiments. Our results indicate that higher-than-optimal adaxial SD values may result in wheat yield losses under stresses imposed by future climate conditions.

plant biology↗

Stomatal patterning is differently regulated in adaxial and abaxial epidermis in Arabidopsis

Stomatal pores in leaves mediate CO2 uptake into the plant and water loss via transpiration. Most plants are hypostomatous with stomata present only in the lower leaf surface (abaxial epidermis). Many herbs, including the model plant Arabidopsis thaliana, have substantial numbers of stomata also on the upper (adaxial) leaf surface. Studies of stomatal development have mostly focused on abaxial stomata and very little is known of adaxial stomatal formation. We addressed the role of leaf number in determination of stomatal density and stomatal ratio, and studied adaxial and abaxial stomatal patterns in mutants deficient in known abaxial stomatal development regulators. We found that stomatal density in some genetic backgrounds varies between different fully expanded leaves and recommend using defined leaves for analyses of stomatal patterning. Our results indicate that stomatal development is at least partly independently regulated in adaxial and abaxial epidermis, as i) plants deficient in ABA biosynthesis and perception have increased stomatal ratios, ii) the epf1epf2, tmm and sdd1 mutants have reduced stomatal ratios, iii) erl2 mutants have increased adaxial but not abaxial stomatal index, and iv) stomatal precursors preferentially occur in abaxial epidermis. Further studies of adaxial stomata can reveal new insights into stomatal form and function.

plant biology↗

Low relative air humidity and increased stomatal density independently hamper growth in young Arabidopsis

Stomatal pores in plant leaves mediate CO2 uptake for photosynthesis and water loss via transpiration. Altered stomatal density can affect plant photosynthetic capacity, water use efficiency, and growth, potentially providing either benefits or drawbacks depending on the environment. Here we explore, at different air humidity regimes, gas exchange, stomatal anatomy, and growth of Arabidopsis lines designed to combine increased stomatal density (epf1, epf2) with high stomatal sensitivity (ht1-2, cyp707a1/a3). We show that the stomatal density and sensitivity traits combine as expected: higher stomatal density increases stomatal conductance, whereas the effect is smaller in the high stomatal sensitivity mutant backgrounds than in the epf1epf2 double mutant. Growth under low air humidity increases plant stomatal ratio with relatively more stomata allocated to the adaxial epidermis. Low relative air humidity and high stomatal density both independently impair plant growth. Higher evaporative demand did not punish increased stomatal density, nor did inherently low stomatal conductance provide any protection against low relative humidity. We propose that the detrimental effects of high stomatal density on plant growth at a young age are related with the cost of producing stomata; future experiments need to test if high stomatal densities might pay off in later life stages. Significance statementThis study delves into the relationship between stomatal density, sensitivity, and environment in Arabidopsis. These findings not only enhance our comprehension of plant responses to humidity but also lay the groundwork for future studies aimed at optimising plant adaptability to varying environmental conditions.

plant biology↗