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Iglesias-Sanchez, A.

Publications and source records attributed to Iglesias-Sanchez, A..

2 recordsLinked to original sources

Activation of alternative oxidase ensures carbon supply for ethylene and carotenoid biosynthesis during tomato fruit ripening

Tomato (Solanum lycopersicum) is a climacteric fruit displaying a peak of respiration at the onset of ripening accompanied by increased synthesis of ethylene and carotenoid pigments. Chromoplast and mitochondrial respiration participate at different stages of fruit ripening, but their in vivo regulation and function remains unclear. We determined the in vivo activities of the mitochondrial alternative oxidase (AOX) and cytochrome oxidase pathways and quantified the levels of respiratory- and ripening-related gene transcripts, primary metabolites and carotenoids in ripening tomato fruits with or without a functional chromorespiration. Furthermore, we carried out physiological, molecular and metabolic analyses of CRISPR-Cas9 mutants defective in AOX1a, the main AOX isoform up-regulated during tomato fruit ripening. We confirmed that PTOX-dependent chromorespiration is only relevant at late stages of ripening and found that in vivo AOX activity significantly increased at the breaker stage, becoming the main contributor to climacteric respiration when ripening is unleashed. This activation did not correlate with gene expression but was likely due to increased levels of AOX activators such as pyruvate (a metabolic precursor of carotenoids), 2-oxoglutarate and succinate. A strong alteration of ripening-related metabolites was observed in aox1a mutant fruits, highlighting a key role of the AOX pathway at the onset of ripening. Our data suggest that increased supply of TCA cycle intermediates at climacteric stage allosterically enhance AOX activity, thus allowing the reoxidation of NAD(P)H to ensure carbon supply for triggering ethylene and carotenoid biosynthesis.

plant biology↗

Arabidopsis FIBRILLIN6 regulates carotenoid biosynthesis by directly promoting phytoene synthase activity

Carotenoids are health-promoting plastidial isoprenoids with essential functions in plants as photoprotectants and photosynthetic pigments in chloroplasts. They also accumulate in specialized plastids named chromoplasts, providing color to non-photosynthetic tissues such as flower petals and ripe fruit. Carotenoid accumulation in chromoplast requires specialized structures and proteins such as fibrillins. Although fibrillins were first reported as structural components of carotenoid sequestering structures in chromoplasts, later work revealed roles in chloroplasts and other plastid types. However, the association of fibrillins with carotenoids in plastids other than chromoplasts has remained unexplored. Here we show that a member of the fibrillin family, FBN6, interacts with phytoene synthase (PSY, the first committed and rate-determining step of the carotenoid pathway) to promote its enzymatic activity. Transient overexpression of FBN6 in Nicotiana benthamiana leaves results in a higher production of phytoene, the product of PSY activity, whereas loss of FBN6 activity in Arabidopsis thaliana mutants dramatically reduces the production of carotenoids during seedling deetiolation and after exposure to high light. Our work hence demonstrates that fibrillins not only promote the accumulation of carotenoids but also their biosynthesis.

plant biology↗