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Updated: Sep 9, 2026

Evaluation of Photosynthetic Behaviors by Simultaneous Measurements of Leaf Reflectance and Chlorophyll Fluorescence Analyses
Published on: August 9, 2019
α-Tocopherol deficiency disrupts xanthophyll-cycle-dependent NPQ and high-light acclimation in Arabidopsis
C Segarra-Medina1, Y G Padilla2, J Zacarías-García3
1Department of Biology, Biochemistry and Natural Sciences, Universitat Jaume I, Castellón 12071, Spain; Instituto de Biología Molecular y Celular de Plantas (IBMCP), Consejo Superior de Investigaciones Científicas-Universidad Politécnica de Valencia, Valencia 46022, Spain.
Abstract:
Plants exposed to high light (HL) must dissipate excess excitation energy while preventing photooxidative damage to the photosynthetic apparatus. Tocopherols are major lipophilic antioxidants in chloroplasts, but whether replacement of α-tocopherol by γ-tocopherol preserves HL acclimation and NPQ-associated photoprotection remains unclear. Here, we investigated the response of Arabidopsis wild-type Col and the α-tocopherol-deficient mutant vte4-4, which accumulates γ-tocopherol instead of α-tocopherol, to acute HL stress. Under HL, vte4-4 showed more severe visible leaf damage than Col, together with higher malondialdehyde and jasmonic acid accumulation and a significant loss in the PSII reaction center protein D1. The mutant also displayed weaker induction of non-photochemical quenching (NPQ), stronger decreases in Fv/Fm and ΦEo, and more pronounced alterations in OJIP-derived parameters due to HL stress. Although vte4-4 increased the total VAZ pool under HL, its lower Z/(VAZ) and higher A/(VAZ) ratios respect to Col indicate a qualitative impairment in xanthophyll-cycle operation rather than defective pigment accumulation. This phenotype was associated with lower HL-induced PsbS accumulation, loss of VDE protein and low AsA/DHA ratio, suggesting a redox limitation affecting both photooxidative buffering and VDE-dependent zeaxanthin formation. Together, our results indicate that γ-tocopherol accumulation is not sufficient to sustain wild-type-like HL acclimation in the absence of α-tocopherol. We propose that α-tocopherol functions not only as a membrane antioxidant, but also as a component of the photoprotective network that supports efficient NPQ engagement and preserves PSII performance under high light stress.
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