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PMID: 12239355 Published · ppublish English Journal Article

The Phytochrome-Deficient pcd1 Mutant of Pea Is Unable to Convert Heme to Biliverdin IX[alpha].

The Plant cell ·Vol. 8 ·No. 1 ·1996-01-00 ·Pages 55-67

Weller JL, Terry MJ, Rameau C, Reid JB, Kendrick RE

Abstract

We isolated a new pea mutant that was selected on the basis of pale color and elongated internodes in a screen under white light. The mutant was designated pcd1 for phytochrome chromophore deficient. Light-grown pcd1 plants have yellow-green foliage with a reduced chlorophyll (Chl) content and an abnormally high Chl a/Chl b ratio. Etiolated pcd1 seedlings are developmentally insensitive to far-red light, show a reduced response to red light, and have no spectrophotometrically detectable phytochrome. The phytochrome A apoprotein is present at the wild-type level in etiolated pcd1 seedlings but is not depleted by red light treatment. Crude phytochrome preparations from etiolated pcd1 tissue also lack spectral activity but can be assembled with phycocyanobilin, an analog of the endogenous phytochrome chromophore phytochromobilin, to yield a difference spectrum characteristic of an apophytochrome-phycocyanobilin adduct. These results indicate that the pcd1-conferred phenotype results from a deficiency in phytochrome chromophore synthesis. Furthermore, etioplast preparations from pcd1 seedlings can metabolize biliverdin (BV) IX[alpha] but not heme to phytochromobilin, indicating that pcd1 plants are severely impaired in their ability to convert heme to BV IX[alpha]. This provides clear evidence that the conversion of heme to BV IX[alpha] is an enzymatic process in higher plants and that it is required for synthesis of the phytochrome chromophore and hence for normal photomorphogenesis.

Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Weller J. L.
Department of Plant Science, University of Tasmania, GPO Box 252C, Hobart, Tasmania 7001, Australia.
Terry M. J.
Rameau C.
Reid J. B.
Kendrick R. E.
References (31)
31 references, click to expand
  1. Preparation and properties of crystalline biliverdin IX alpha. Simple methods for preparing isomerically homogeneous biliverdin and [14C[biliverdin by using 2,3-dichloro-5,6-dicyanobenzoquinone.
    Biochem J. 1980 Aug 1;189(2):193-208 PMID: 7458909
  2. Inactivation of phytochrome- and phycobiliprotein-chromophore precursors by rat liver biliverdin reductase.
    J Biol Chem. 1993 Dec 15;268(35):26099-106 PMID: 8253726
  3. Different Roles for Phytochrome in Etiolated and Green Plants Deduced from Characterization of Arabidopsis thaliana Mutants.
    Plant Cell. 1989 Sep;1(9):867-880 PMID: 12359912
  4. Effects of Iron and Oxygen on Chlorophyll Biosynthesis : II. OBSERVATIONS ON THE BIOSYNTHETIC PATHWAY IN ISOLATED ETIOCHLOROPLASTS.
    Plant Physiol. 1982 Jan;69(1):112-6 PMID: 16662140
  5. Phytochrome-Deficient hy1 and hy2 Long Hypocotyl Mutants of Arabidopsis Are Defective in Phytochrome Chromophore Biosynthesis.
    Plant Cell. 1991 Nov;3(11):1177-1186 PMID: 12324588
  6. Phytochrome A null mutants of Arabidopsis display a wild-type phenotype in white light.
    Plant Cell. 1993 Jul;5(7):757-68 PMID: 8364355
  7. Separate physiological roles and subcellular compartments for two tetrapyrrole biosynthetic pathways in Euglena gracilis.
    J Biol Chem. 1983 Jun 10;258(11):6799-807 PMID: 6133868
  8. Phytochrome Chromophore Biosynthesis : Both 5-Aminolevulinic Acid and Biliverdin Overcome Inhibition by Gabaculine in Etiolated Avena sativa L. Seedlings.
    Plant Physiol. 1987 Jun;84(2):304-10 PMID: 16665435
  9. Measurement of heme efflux and heme content in isolated developing chloroplasts.
    Plant Physiol. 1990 Nov;94(3):1414-23 PMID: 16667847
  10. Heme oxygenase: function, multiplicity, regulatory mechanisms, and clinical applications.
    FASEB J. 1988 Jul;2(10 ):2557-68 PMID: 3290025
  11. Algal heme oxygenase from Cyanidium caldarium. Partial purification and fractionation into three required protein components.
    J Biol Chem. 1988 Aug 25;263(24):11915-21 PMID: 3136167
  12. Phytochrome chromophore biosynthesis. Treatment of tetrapyrrole-deficient Avena explants with natural and non-natural bilatrienes leads to formation of spectrally active holoproteins.
    J Biol Chem. 1989 Jan 5;264(1):183-9 PMID: 2909515
  13. The hy3 Long Hypocotyl Mutant of Arabidopsis Is Deficient in Phytochrome B.
    Plant Cell. 1991 Dec;3(12):1263-1274 PMID: 12324590
  14. The cucumber long hypocotyl mutant lacks a light-stable PHYB-like phytochrome.
    Plant Cell. 1992 Mar;4(3):241-51 PMID: 1498594
  15. Holophytochrome assembly. Coupled assay for phytochromobilin synthase in organello.
    J Biol Chem. 1991 Nov 25;266(33):22215-21 PMID: 1939244
  16. Phytochrome assembly. The structure and biological activity of 2(R),3(E)-phytochromobilin derived from phycobiliproteins.
    J Biol Chem. 1992 Jul 25;267(21):14790-8 PMID: 1634523
  17. New lv Mutants of Pea Are Deficient in Phytochrome B.
    Plant Physiol. 1995 Jun;108(2):525-532 PMID: 12228490
  18. Isolation and Initial Characterization of Arabidopsis Mutants That Are Deficient in Phytochrome A.
    Plant Physiol. 1993 May;102(1):269-277 PMID: 12231818
  19. hy8, a new class of arabidopsis long hypocotyl mutants deficient in functional phytochrome A.
    Plant Cell. 1993 Jan;5(1):39-48 PMID: 8439743
  20. Phytochrome assembly. Defining chromophore structural requirements for covalent attachment and photoreversibility.
    J Biol Chem. 1992 Sep 25;267(27):19204-10 PMID: 1527043
  21. (3Z)- and (3E)-phytochromobilin are intermediates in the biosynthesis of the phytochrome chromophore.
    J Biol Chem. 1995 May 12;270(19):11111-8 PMID: 7744741
  22. Phytochromes: photosensory perception and signal transduction.
    Science. 1995 May 5;268(5211):675-80 PMID: 7732376
  23. Phytochrome A and Phytochrome B Have Overlapping but Distinct Functions in Arabidopsis Development.
    Plant Physiol. 1994 Apr;104(4):1139-1149 PMID: 12232154
  24. The regulation of circadian period by phototransduction pathways in Arabidopsis.
    Science. 1995 Feb 24;267(5201):1163-6 PMID: 7855596
  25. Isolation of a cDNA encoding chloroplast ferrochelatase from Arabidopsis thaliana by functional complementation of a yeast mutant.
    J Biol Chem. 1994 May 6;269(18):13405-13 PMID: 8175771
  26. Far-red light-insensitive, phytochrome A-deficient mutants of tomato.
    Mol Gen Genet. 1995 Jan 20;246(2):133-41 PMID: 7862083
  27. A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding.
    Anal Biochem. 1976 May 7;72:248-54 PMID: 942051
  28. Photophysiology of the Elongated Internode (ein) Mutant of Brassica rapa: ein Mutant Lacks a Detectable Phytochrome B-Like Polypeptide.
    Plant Physiol. 1992 Nov;100(3):1442-7 PMID: 16653143
  29. Extinction coefficients of chlorophyll a and B in n,n-dimethylformamide and 80% acetone.
    Plant Physiol. 1985 Feb;77(2):483-5 PMID: 16664080
  30. Calcium/calmodulin-dependent and -independent phytochrome signal transduction pathways.
    Cell. 1993 Jun 4;73(5):937-52 PMID: 8388782
  31. Biosynthesis of the plant photoreceptor phytochrome.
    Arch Biochem Biophys. 1993 Oct;306(1):1-15 PMID: 8215388
Article Info
Journal
The Plant cell
Abbr.
Plant Cell
ISSN
1532-298X
Published
1996-01-00
Pages
55-67
Language
English
Region
England
NLM ID
9208688
PMCID
PMC161081
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