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PMID: 24197007 Published · ppublish English Journal Article

The role of cis-carotenoids in abscisic acid biosynthesis.

Planta ·Vol. 182 ·No. 1 ·1990-08-00 ·Pages 118-28

Parry AD, Babiano MJ, Horgan R

Abstract

Evidence has been obtained which is consistent with 9'-cis-neoxanthin being a major precursor of abscisic acid (ABA) in higher plants. A mild, rapid procedure was developed for the extraction and analysis of carotenoids from a range of tissues. Once purified the carotenoids were identified from their light-absorbance properties, reactions with dilute acid, high-performance liquid chromatography Rts, mass spectra and the quasiequilibria resulting from iodine-catalysed or chlorophyllsensitised photoisomerisation. Two possible ABA precursors, 9'-cis-neoxanthin and 9-cis-violaxanthin, were identified in extracts of light-grown and etiolated leaves (of Lycopersicon esculentum, Phaseolus vulgaris, Vicia faba, Pisum sativum, Cicer arietinum, Zea mays, Nicotiana plumbaginifolia, Plantago lanceolata and Digitalis purpurea), and roots of light-grown and etiolated plants (Lycopersicon, Phaseolus and Zea). The 9,9'-di-cisisomer of violaxanthin was synthesised but its presence was not detected in any extracts. Levels of 9'-cis-neoxanthin and all-trans-violaxanthin were between 20- to 100-fold greater than those of ABA in light-grown leaves. The levels of 9-cis-violaxanthin were similar to those of ABA but unaffected by water stress. Etiolated Phaseolus leaves contained reduced amounts of carotenoids (15-20% compared with light-grown leaves) but retained the ability to synthesise large amounts of ABA. The amounts of ABA synthesised, measured as increases in ABA and its metabolites phaseic acid and dihydrophaseic acid, were closely matched by decreases in the levels of 9'-cis-neoxanthin and all-trans-violaxanthin. In etiolated seedlings grown on 50% D2O, deuterium incorporation into ABA was similar to that into the xanthophylls. Relative levels of carotenoids in roots and light-grown and etiolated leaves of the ABA-deficient mutants, notabilis, flacca and sitiens were the same as those found in wild-type tomato tissues.

Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Parry A D
Department of Biological Sciences, University College of Wales, SY23 3DA, Aberystwyth, Dyfed, UK.
Babiano M J
Horgan R
References (19)
19 references, click to expand
  1. The metabolism of abscisic acid in Flacca, a wilty mutant of tomato.
    Biochem Genet. 1973 Sep;10(1):79-90 PMID: 4747558
  2. Dark incorporation of 18-O2 into antheraxanthin by bean leaf.
    Biochim Biophys Acta. 1965 Sep 27;109(1):303-5 PMID: 5864024
  3. High-performance liquid chromatography of carotenoids.
    Methods Enzymol. 1985;111:189-200 PMID: 4033432
  4. Conversion of xanthoxin to abscisic Acid by cell-free preparations from bean leaves.
    Plant Physiol. 1987 Dec;85(4):916-21 PMID: 16665831
  5. Inhibition of carotenoid accumulation and abscisic acid biosynthesis in fluridone-treated dark-grown barley.
    Eur J Biochem. 1986 Oct 1;160(1):117-21 PMID: 2945718
  6. Abscisic Acid Biosynthesis in Isolated Embryos of Zea mays L.
    Plant Physiol. 1989 Apr;89(4):1039-41 PMID: 16666660
  7. Xanthoxin Metabolism in Cell-free Preparations from Wild Type and Wilty Mutants of Tomato.
    Plant Physiol. 1988 Sep;88(1):178-82 PMID: 16666262
  8. Xanthophylls and abscisic Acid biosynthesis in water-stressed bean leaves.
    Plant Physiol. 1987 Dec;85(4):910-5 PMID: 16665830
  9. The use of deuterium from deuterium oxide as a label in studies of biosynthetic pathways: carotenoid transformations in a Flavobacterium species.
    FEBS Lett. 1977 Jul 15;79(2):281-3 PMID: 891941
  10. Incorporation of oxygen into abscisic Acid and phaseic Acid from molecular oxygen.
    Plant Physiol. 1984 May;75(1):166-9 PMID: 16663564
  11. Abscisic Acid Biosynthesis in Leaves and Roots of Xanthium strumarium.
    Plant Physiol. 1987 Nov;85(3):726-32 PMID: 16665768
  12. Mass spectrometry of perdeuterated molecules of biological origin. Fatty acid esters from Scenedesmus obliquus.
    Biochemistry. 1970 Dec 8;9(25):4854-66 PMID: 5480149
  13. Seed development and vivipary in Zea mays L.
    Planta. 1987 Jul;171(3):358-64 PMID: 24227435
  14. Xanthoxin levels and metabolism in the wild-type and wilty mutants of tomato.
    Planta. 1988 Mar;173(3):397-404 PMID: 24226547
  15. Graviresponsiveness and abscisic-acid content of roots of carotenoid-deficient mutants of Zea mays L.
    Planta. 1985;164:126-8 PMID: 11540855
  16. Evidence for a universal pathway of abscisic Acid biosynthesis in higher plants from o incorporation patterns.
    Plant Physiol. 1989 Dec;91(4):1594-601 PMID: 16667222
  17. Early Events in Maize Seed Development : 1-Methyl-3-phenyl-5-(3-[trifluoromethyl]phenyl)-4-(1H)-Pyridinone Induction of Vivipary.
    Plant Physiol. 1983 Dec;73(4):899-901 PMID: 16663339
  18. Xanthoxin, a recently discovered plant growth inhibitor.
    Proc R Soc Lond B Biol Sci. 1972 Mar 14;180(1060):317-46 PMID: 4402470
  19. The carotenoid and abscisic acid content of viviparous kernels and seedlings ofZea mays L.
    Planta. 1986 Mar;169(1):87-96 PMID: 24232433
Article Info
Journal
Planta
Abbr.
Planta
ISSN
0032-0935
Published
1990-08-00
Pages
118-28
Language
English
Region
Germany
NLM ID
1250576
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