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First published online November 6, 2009; 10.1105/tpc.108.062752

The Plant Cell 21:3473-3492 (2009)
© 2009 American Society of Plant Biologists

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Photosynthetic Redox Imbalance Governs Leaf Sectoring in the Arabidopsis thaliana Variegation Mutants immutans, spotty, var1, and var2[W]

Dominic Rossoa, Rainer Bodea, Wenze Lia, Marianna Krola, Diego Saccona, Shelly Wanga, Lori A. Schillacia, Steven R. Rodermelb, Denis P. Maxwella and Norman P.A. Hünera,1

a Department of Biology and the Biotron, University of Western Ontario, London, ON, Canada N6A 5B7
b Department of Genetics, Development, and Cell Biology, Iowa State University, Ames, Iowa, 50011

1 Address correspondence to nhuner{at}uwo.ca.

We hypothesized that chloroplast energy imbalance sensed through alterations in the redox state of the photosynthetic electron transport chain, measured as excitation pressure, governs the extent of variegation in the immutans mutant of Arabidopsis thaliana. To test this hypothesis, we developed a nondestructive imaging technique and used it to quantify the extent of variegation in vivo as a function of growth temperature and irradiance. The extent of variegation was positively correlated (R2 = 0.750) with an increase in excitation pressure irrespective of whether high light, low temperature, or continuous illumination was used to induce increased excitation pressure. Similar trends were observed with the variegated mutants spotty, var1, and var2. Measurements of greening of etiolated wild-type and immutans cotyledons indicated that the absence of IMMUTANS increased excitation pressure twofold during the first 6 to 12 h of greening, which led to impaired biogenesis of thylakoid membranes. In contrast with IMMUTANS, the expression of its mitochondrial analog, AOX1a, was transiently upregulated in the wild type but permanently upregulated in immutans, indicating that the effects of excitation pressure during greening were also detectable in mitochondria. We conclude that mutations involving components of the photosynthetic electron transport chain, such as those present in immutans, spotty, var1, and var2, predispose Arabidopsis chloroplasts to photooxidation under high excitation pressure, resulting in the variegated phenotype.







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