Literature DB >> 31745929

Quantification of Carotenoid Pathway Flux in Green and Nongreen Systems.

Julian Koschmieder1, Ralf Welsch2.   

Abstract

Metabolite accumulation in plant tissues represents the transient net result of their constant biosynthesis and degradation. For carotenoids, degradation might occur enzymatically by carotenoid cleavage producing plant hormones and volatiles or by nonenzymatic oxidation, both depending on environmental and developmental conditions. Carotenoid biosynthesis is therefore constantly regulated at various levels to attain sufficient carotenoid accumulation, mainly for photosynthesis and photoprotection. Due to the plenitude of carotenoids and their degradation products, it is not feasible to investigate overall carotenoid biosynthetic activity and its regulation by the quantification of all carotenoids including their derivatives. This is an issue encountered in investigations on many other highly branched pathways. We therefore present protocols to determine carotenoid biosynthesis flux in a given plant tissue by HPLC quantification of phytoene, the first pathway-specific intermediate and precursor of all carotenoids synthesized by phytoene synthase (PSY). For this purpose, enzymatic metabolization of phytoene in the tissue under investigation is prevented by treatment with the bleaching herbicide norflurazon, blocking the carotenogenic pathway downstream of PSY. As phytoene is more resistant to oxidation than desaturated carotenoids, the rate of phytoene biosynthesis serves as a good measure for total carotenogenic flux in a given tissue. The method is described for Arabidopsis for two photosynthetically active sample types, namely, seedlings and leaves, as well as for seed-derived callus as nongreen tissue. It should be realizable using only a relatively simple experimental setup and is applicable to other plant tissues as well as to different plant species. Additionally, similar experimental setups could be a useful tool to investigate total flux and turnover rates in other biosynthetic pathways.

Entities:  

Keywords:  Arabidopsis; Callus; Norflurazon; Phytoene; Phytoene desaturase; Quantitative HPLC; Seedlings

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Year:  2020        PMID: 31745929     DOI: 10.1007/978-1-4939-9952-1_21

Source DB:  PubMed          Journal:  Methods Mol Biol        ISSN: 1064-3745


  3 in total

1.  Plant apocarotenoid metabolism utilizes defense mechanisms against reactive carbonyl species and xenobiotics.

Authors:  Julian Koschmieder; Florian Wüst; Patrick Schaub; Daniel Álvarez; Danika Trautmann; Markus Krischke; Camille Rustenholz; Jun'ichi Mano; Martin J Mueller; Dorothea Bartels; Philippe Hugueney; Peter Beyer; Ralf Welsch
Journal:  Plant Physiol       Date:  2021-03-15       Impact factor: 8.340

2.  Overexpression of PSY1 increases fruit skin and flesh carotenoid content and reveals associated transcription factors in apple (Malus × domestica).

Authors:  Charles Ampomah-Dwamena; Sumathi Tomes; Amali H Thrimawithana; Caitlin Elborough; Nitisha Bhargava; Ria Rebstock; Paul Sutherland; Hilary Ireland; Andrew C Allan; Richard V Espley
Journal:  Front Plant Sci       Date:  2022-09-15       Impact factor: 6.627

3.  The mystery of apocarotenoid catabolism in plants.

Authors:  Tianhu Sun
Journal:  Plant Physiol       Date:  2021-03-15       Impact factor: 8.340

  3 in total

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