2023bioRxiv (Cold Spring Harbor Laboratory)Open access

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

Ingmar Tulva, Kaspar Koolmeister, Hanna Hõrak

Open full text 2 citations

Abstract

Abstract Stomatal pores in plant leaves mediate CO 2 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 statement This 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.

Open-access reader

About this research paper

What this paper is about

Abstract Stomatal pores in plant leaves mediate CO 2 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 statement This 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.

Why it matters

OpenAlex reports 2 citations for this work. Citation counts describe recorded attention and do not establish research quality.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

Abstract Stomatal pores in plant leaves mediate CO 2 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 statement This 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.

Key concepts: Stomatal density, Stomatal conductance, Transpiration, Humidity, Photosynthesis, Relative humidity, Arabidopsis, Water-use efficiency

Related papers

Back to paper searchBrowse research topicsOriginal source
Low relative air humidity and increased stomatal density independently hamper growth in young Arabidopsis — Research Paper | ScholarLens