bioRxiv · 10.1101/2021.02.03.429619
Systematic monitoring of photosynthetically-derived oxidative signals using a 2-Cys peroxiredoxin-based redox probe
Abstract
Transmission of reductive cues from the photosynthetic electron transport chain to redox-regulated proteins plays a crucial role in activating chloroplast metabolism. However, deciphering the role of their counterbalanced oxidative signals is challenging due to monitoring difficulties. Here, we demonstrate the light-depended redox modification of chloroplast-targeted 2-Cys peroxiredoxins and introduce peroxiredoxin-based biosensors to monitor photosynthetically-derived oxidative signals. By employing a set of genetically encoded biosensors, we show the induction of oxidative signals under habitual light intensities and their inverse relationship with NADPH levels, unraveling the combined activity of reducing and oxidizing signals in fine-tuning chloroplast metabolism. A faster increase in carbon assimilation rates during photosynthesis induction phase was measured in plants deficient in 2-Cys peroxiredoxins compared to wild-type, suggesting the involvement of oxidative signals in attenuating photosynthesis under variable light environments. We suggest that oxidative signals measured by peroxiredoxin-based biosensors reflect the limitation to photosynthesis imposed by the redox regulatory system. One-Sentence SummaryA genetically encoded biosensor unmasked the dominant role of photosynthetically-derived oxidative signals under habitual conditions.
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Lampl, N., Nissan, I., Gilad, G., Hipsch, M., Rosenwasser, S.. 2021-02-03. Systematic monitoring of photosynthetically-derived oxidative signals using a 2-Cys peroxiredoxin-based redox probe. https://doi.org/10.1101/2021.02.03.429619
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