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Updated: Aug 8, 2026

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Relating Stomatal Conductance to Leaf Functional Traits
Published on: October 12, 2015
Leaf development regulates state transition capacity in trees
Chen Hu1, Sanchali Nanda2,3, Maria Dolores Pissolato2
1Umeå Plant Science Centre, Department of Plant Physiology, Umeå University, Umeå, Sweden. chen.hu@umu.se.
Nature Communications
|August 6, 2026
Summary
State transitions (ST) balance light energy in plants. This study reveals ST capacity declines with leaf age in trees, impacting photosynthesis under dynamic light and highlighting developmental control.
Area of Science:
- Plant Physiology
- Photosynthesis Research
- Molecular Biology
Background:
- State transitions (ST) are crucial for balancing excitation energy between photosystem I and II.
- While well-studied in Arabidopsis, ST regulation and significance in other angiosperms, especially trees, are largely unknown.
Purpose of the Study:
- Investigate ST regulation and physiological significance in hybrid aspen and other tree species.
- Determine the impact of developmental and environmental factors on ST capacity.
- Elucidate the genetic basis and ultrastructural correlates of ST in trees.
Main Methods:
- Physiological measurements (e.g., chlorophyll fluorescence for qT).
- Biochemical analyses (e.g., pigment ratios).
- Ultrastructural examination of thylakoid architecture.
- Genetic analysis using STN7 knockout mutants.
Main Results:
- A significant canopy gradient in ST capacity (qT) was observed, with younger leaves showing higher capacity.
- A conserved developmental decline in qT was found across tree species.
- Reduced qT correlated with increased grana stacking and altered LHCII/PSII ratios, but not LHCII phosphorylation.
- STN7 mutants showed altered PSI/PSII ratios, reduced PSII efficiency in young leaves, and slower growth under variable light.
Conclusions:
- State transitions are developmentally regulated in trees, with capacity declining during leaf maturation.
- Thylakoid architecture remodeling may influence ST-related functional reorganization.
- ST is vital for plant performance under dynamic light conditions, particularly in young leaves.
Related Concept Videos
Regulation of Transpiration by Stomata
During photosynthesis, plants acquire the necessary carbon dioxide and release the produced oxygen back into the atmosphere. Openings in the epidermis of plant leaves is the site of this exchange of gasses. A single opening is called a stoma—derived from the Greek word for “mouth.” Stomata open and close in response to a variety of environmental cues.
Meristems and Plant Growth
Plants grow throughout their lives; this is called indeterminate growth, and it distinguishes plants from most animals. Although certain parts of plants stop growing (e.g., leaves and flowers), others grow continuously—like roots and stems.
Primary and Secondary Growth in Roots and Shoots
Vascular plants, which account for over 90% of the Earth’s vegetation, all undergo primary growth—which lengthens roots and shoots. Many land plants, notably woody plants, also undergo secondary growth—which thickens roots and shoots.
Morphogenesis
Plant morphogenesis—the development of a plant’s form and structure—involves several overlapping developmental processes, including growth and cell differentiation. Precursor cells differentiate into specific cell types, which are organized into the tissues and organ systems that make up the functional plant.
Adaptations that Reduce Water Loss
Though evaporation from plant leaves drives transpiration, it also results in loss of water. Because water is critical for photosynthetic reactions and other cellular processes, evolutionary pressures on plants in different environments have driven the acquisition of adaptations that reduce water loss.
Short-distance Transport of Resources
Short-distance transport refers to transport that occurs over a distance of just 2-3 cells, crossing the plasma membrane in the process. Small uncharged molecules, such as oxygen, carbon dioxide, and water, can diffuse across the plasma membrane on their own. In contrast, ions and larger molecules require the assistance of transport proteins due to their charge or size. Transport across membranes also occurs within individual cells, playing a variety of essential roles for the plant as a whole.
