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Punkkinen, M.

Publications and source records attributed to Punkkinen, M..

2 recordsLinked to original sources

Linking stomatal function with photosynthetic light reactions and stress response in faba bean

Faba bean (Vicia faba L.) is a key protein crop, but its cultivation and yield stability are hindered by a number of environmental stresses. Stomata regulate gas exchange between the plant and atmosphere, playing a central role in photosynthesis and mediating plant responses to a wide range of environmental stressors. This study aimed to investigate variations in leaf temperature as a proxy for stomatal function and photosynthetic regulations in faba bean, and to examine the response of this crop to short-term acute ozone (O3) exposure stress. Here, we used a high-throughput plant phenotyping (HTPP) platform to screen 196 faba bean genotypes for photosynthetic and stomatal function under controlled conditions. A subset of extreme genotypes, identified based on relative leaf tempreture from the initial screening, was exposed to a 450 ppb O3 treatment. Our results revealed strong positive relationship between photosynthetic efficiency and relative leaf temperature. A three-fold difference in relative leaf temperature was observed among genotypes. The O3 treatment caused signicantly less damage in genotypes with higher leaf temperature compared to those with lower leaf temperature (p<0.001). By combining a HTPP platform with elevated O3 stress treatment, we identified faba bean genotypes with contrasting stomatal responses to the O3 exposure. Our results advance understanding of the regulation mechanisms of photosynthetic light reactions and the role of stomatal function in modulating faba bean responses to environmental stressors.

plant biology↗

Mitochondria affect photosynthesis through altered tissue levels of oxygen

Interactions between plant energy organelles, the chloroplasts and the mitochondria, are crucial for plant development and acclimation. These interactions occur at different levels including exchange of metabolites and reducing power, organelle signaling pathways and intracellular gas exchange. Mitochondrial retrograde stress signaling activates expression of nuclear genes encoding mitochondrial components, including alternative oxidases. High abundances of these respiratory enzymes coincide not only with the changes in plant respiration but also with alterations in the chloroplast. For example, plants that overexpress alternative oxidases are tolerant to methyl viologen, a redox-active compound that catalyzes transfer of electrons from Photosystem I to molecular oxygen. The mechanism of this inter-organelle interaction is unclear but could be related to diminished availability of tissue oxygen. Here we assessed respiration, photosynthesis and in vivo levels of oxygen in a set of Arabidopsis lines with perturbations in diverse mitochondrial functions, including defects in respiratory complex I, mitochondrial protein processing, transcription, nucleoid organization, altered fission and architecture or suppressed ATP synthase activity. In these lines, the increased abundance and activity of alternative oxidases strongly correlated with higher oxygen consumption in darkness, lower oxygen re-accumulation in light, and diminished effects of methyl viologen in chloroplasts. These results support the hypothesis that increased mitochondrial oxygen sink capacity affects photosynthesis by decreasing oxygen levels in tissues. This phenomenon can be one of the reasons for the impact that stressed mitochondria have on chloroplasts and photosynthesis. It contributes to our understanding of the mechanisms of hypoxia establishment and acclimation in plants.

plant biology↗