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Molecular and Photosynthetic Performance in the Yellow Leaf Mutant of According to Transcriptome Sequencing, Chlorophyll Fluorescence, and Modulated 820 Nm Reflection

Overview
Journal Cells
Publisher MDPI
Date 2022 Feb 15
PMID 35159241
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Abstract

To study the photosynthetic energy mechanism and electron transfer in yellow leaves, transcriptomics combined with physiological approaches was used to explore the mechanism of the yellow leaf mutant 'Merrillii'. The results showed that chlorophyll content, the maximal photochemical efficiency of PSII (), and the parameters related to the OJ phase of fluorescence (φ, φ) were all decreased significantly in mutant-type leaves. The efficiency needed for an electron to be transferred from the reduced carriers between the two photosystems to the end acceptors of the PSI (δ) and the quantum yield of the energy dissipation (φ) were higher in the leaves of mutant-type compared to those in wild-type leaves. Analysis of the prompt fluorescence kinetics and modulated 820 nm reflection showed that the electron transfer of PSII was decreased, and PSI activity was increased in yellow leaves. Transcriptome data showed that the unigenes involved in chlorophyll synthesis and the photosynthetic electron transport complex were downregulated in the leaves of mutant-type compared to wild-type leaves, while there were no observable changes in carotenoid content and biosynthesis. These findings suggest that the downregulation of genes involved in chlorophyll synthesis leads to decreased chlorophyll content, resulting in both PSI activity and carotenoids having higher tolerance when acting as photo-protective mechanisms for coping with chlorophyll deficit and decrease in linear electron transport in PSII.

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