Access the full text.
Sign up today, get DeepDyve free for 14 days.
P. Devlin, S. Rood, David Somers, P. Quail, G. Whitelam (1992)
Photophysiology of the Elongated Internode (ein) Mutant of Brassica rapa: ein Mutant Lacks a Detectable Phytochrome B-Like Polypeptide.Plant physiology, 100 3
W. Thompson, M. White (1991)
Physiological and Molecular Studies of Light-Regulated Nuclear Genes in Higher Plants, 42
J. Metzger (1985)
Gibberellins and Light Regulated Petiole Growth in Thlaspi arvense L.Plant physiology, 86 1
N. Goto, T. Kumagai, M. Koornneef (1991)
Flowering responses to light-breaks in photomorphogenic mutants of Arabidopsis thaliana, a long-day plantPhysiologia Plantarum, 83
S. Rood, P. Williams, D. Pearce, N. Murofushi, L. Mander, R. Pharis (1990)
A mutant gene that increases gibberellin production in brassica.Plant physiology, 93 3
F. Beall, P. Morgan, L. Mander, F. Miller, K. Babb (1991)
Genetic Regulation of Development in Sorghum bicolor: V. The ma(3) Allele Results in Gibberellin Enrichment.Plant physiology, 95 1
Accumulation of C , , - gibberellins in the gibberellin - insensitive dwarf mutant gai of Arabidopsis thaliana ( L . ) Heynh
(1992)
Internode length in Pisurn . A new , slender mutant with elevated levels of C , , gibberellins
E. López-Juez, Masatomo Kobayashi, Akira Sakurai, Y. Kamiya, R. Kendrick (1995)
Phytochrome, Gibberellins, and Hypocotyl Growth (A Study Using the Cucumber (Cucumis sativus L.) long hypocotyl Mutant), 107
M. Szekeres, K. Németh, Z. Koncz-Kálmán, J. Mathur, A. Kauschmann, T. Altmann, G. Rédei, F. Nagy, J. Schell, C. Koncz (1996)
Brassinosteroids Rescue the Deficiency of CYP90, a Cytochrome P450, Controlling Cell Elongation and De-etiolation in ArabidopsisCell, 85
J. Chory, P. Nagpal, C. Peto (1991)
Phenotypic and Genetic Analysis of det2, a New Mutant That Affects Light-Regulated Seedling Development in Arabidopsis.The Plant cell, 3
R. Sharrock, P. Quail (1989)
Novel phytochrome sequences in Arabidopsis thaliana: structure, evolution, and differential expression of a plant regulatory photoreceptor family.Genes & development, 3 11
Ilya Raskin, Hans Kende (1984)
Role of gibberellin in the growth response of submerged deep water rice.Plant physiology, 76 4
R. Wilson, J. Heckman, C. Somerville (1992)
Gibberellin Is Required for Flowering in Arabidopsis thaliana under Short Days.Plant physiology, 100 1
A. Jones, D. Cochran, P. Lamerson, M. Evans, J. Cohen (1991)
Red light-regulated growth. I. Changes in the abundance of indoleacetic acid and a 22-kilodalton auxin-binding protein in the maize mesocotyl.Plant physiology, 97
S. Jacobsen, N. Olszewski (1993)
Mutations at the SPINDLY locus of Arabidopsis alter gibberellin signal transduction.The Plant cell, 5
(1989)
Nove1 phytochrome sequences
J. Reed, A. Nagatani, Tedd, Elich, M. Fagan, J. Chory (1994)
Phytochrome A and Phytochrome B Have Overlapping but Distinct Functions in Arabidopsis Development, 104
P. Böger, G. Sandmann (1989)
Target Sites of Herbicide Action
M. Koornneef, E. Rolff, C. Spruit (1980)
Genetic control of light-inhibited hypocotyl elongation in Arabidopsis thaliana (L.)Biochimica et Biophysica Acta
E. López-Juez, A. Nagatani, K. Tomizawa, M. Deák, R. Kern, R. Kendrick, M. Furuya (1992)
The cucumber long hypocotyl mutant lacks a light-stable PHYB-like phytochrome.The Plant cell, 4 3
W. Potts, J. Reid, I. Murfet (1985)
Internode length in Pisum. Gibberellins and the slender phenotypePhysiologia Plantarum, 63
T. Shinomura, A. Nagatani, J. Chory, Masaki Furuya (1994)
The Induction of Seed Germination in Arabidopsis thaliana Is Regulated Principally by Phytochrome B and Secondarily by Phytochrome A, 104
M. Talón, J. Zeevaart, D. Gage (1991)
Identification of Gibberellins in Spinach and Effects of Light and Darkness on their Levels.Plant physiology, 97 4
M. Talón, M. Koornneef, J. Zeevaart (1990)
Endogenous gibberellins in Arabidopsis thaliana and possible steps blocked in the biosynthetic pathways of the semidwarf ga4 and ga5 mutants.Proceedings of the National Academy of Sciences of the United States of America, 87
Kenneth Foster, F. Miller, Kevin Childs, Page Morgan (1994)
Genetic Regulation of Development in Sorghum bicolor (VIII. Shoot Growth, Tillering, Flowering, Gibberellin Biosynthesis, and Phytochrome Levels Are Differentially Affected by Dosage of the ma3R Allele, 105
Kevin Childs, M. Cordonnier-Pratt, Lee Pratt, Page Morgan (1992)
Genetic Regulation of Development in Sorghum bicolor: VII. ma(3) Flowering Mutant Lacks a Phytochrome that Predominates in Green Tissue.Plant physiology, 99 2
J. Weller, A. Nagatani, R. Kendrick, I. Murfet, J. Reid (1995)
New lv Mutants of Pea Are Deficient in Phytochrome B, 108
Tai-ping Sun, H. Goodman, F. Ausubel (1992)
Cloning the Arabidopsis GA1 Locus by Genomic Subtraction.The Plant cell, 4
S. Rood, K. Zanewich, D. Bray (1990)
Growth and development of Brassica genotypes differing in endogenous gibberellin content. II. Gibberellin content, growth analyses and cell size.Physiologia plantarum, 79 4
J. Zeevaart, D. Gage (1993)
ent-Kaurene Biosynthesis Is Enhanced by Long Photoperiods in the Long-Day Plants Spinacia oleracea L. and Agrostemma githago L, 101
Emmanuel Liscum, R. Hangarter (1993)
Genetic Evidence That the Red-Absorbing Form of Phytochrome B Modulates Gravitropism in Arabidopsis thaliana, 103
M. Koornneef, J. Eden, C. Hanhart, A. Jongh (1983)
Genetic fine structure of the ga-1 locus in the higher plant Arabidopsis thalianaGenetics Research, 41
G. Whitelam, Harry Smith (1991)
Retention of Phytochrome-Mediated Shade Avoidance Responses in Phytochrome-Deficient Mutants of Arabidopsis, Cucumber and TomatoJournal of Plant Physiology, 139
E. Jordan, P. Hatfield, D. Hondred, M. Talón, J. Zeevaart, R. Vierstra (1995)
Phytochrome A Overexpression in Transgenic Tobacco (Correlation of Dwarf Phenotype with High Concentrations of Phytochrome in Vascular Tissue and Attenuated Gibberellin Levels), 107
D. Law, P. Davies (1990)
Comparative indole-3-acetic Acid levels in the slender pea and other pea phenotypes.Plant physiology, 93 4
P. Quail, W. Briggs, J. Chory, R. Hangarter, N. Harberd, R. Kendrick, M. Koornneef, B. Parks, R. Sharrock, E. Schäfer, W. Thompson, G. Whitelam (1994)
Spotlight on phytochrome nomenclaturePlant Molecular Biology Reporter, 12
Jianming Li, P. Nagpal, V. Vitart, T. Mcmorris, J. Chory (1996)
A Role for Brassinosteroids in Light-Dependent Development of ArabidopsisScience, 272
J. Zeevaart, M. Talón (1992)
Gibberellin mutants in Arabidopsis thaliana
J. Reed, P. Nagpal, Daniel Poole, M. Furuya, J. Chory (1993)
Mutations in the gene for the red/far-red light receptor phytochrome B alter cell elongation and physiological responses throughout Arabidopsis development.The Plant cell, 5
D. Cosgrove (1994)
Photomodulation of growth
J. Mullet (1988)
Chloroplast Development and Gene Expression, 39
J. Chory (1991)
Light signals in leaf and chloroplast development: photoreceptors and downstream responses in search of a transduction pathway.The New biologist, 3 6
W. Rademacher (1991)
Inhibitors of Gibberellin Biosynthesis: Applications in Agriculture and Horticulture
K. Foster, P. Morgan (1995)
Genetic Regulation of Development in Sorghum bicolor (IX. The ma3R Allele Disrupts Diurnal Control of Gibberellin Biosynthesis), 108
A. Matheussen, P. Morgan, R. Frederiksen (1991)
Implication of Gibberellins in Head Smut (Sporisorium reilianum) of Sorghum bicolor.Plant physiology, 96 2
A. Nagatani, J. Chory, M. Furuya (1991)
Phytochrome B Is Not Detectable in the hy3 Mutant of Arabidopsis, Which Is Deficient in Responding to End-of-Day Far-Red Light TreatmentsPlant and Cell Physiology, 32
Abstract Plant responses to red and far-red light are mediated by a family of photoreceptors called phytochromes. Arabidopsis thaliana seedlings lacking one of the phytochromes, phyB, have elongated hypocotyls and other tissues, suggesting that they may have an alteration in hormone physiology. We have studied the possibility that phyB mutations affect seedling gibberellin (GA) perception and metabolism by testing the responsiveness of wild-type and phyB seedlings to exogenous GAs. The phyB mutant elongates more than the wild type in response to the same exogenous concentrations of GA3 or GA4, showing that the mutation causes an increase in responsiveness to GAs. Among GAs that we were able to detect, we found no significant difference in endogenous levels between wild-type and phyB mutant seedlings. However, GA4 levels were below our limit of detectability, and the concentration of that active GA could have varied between wild-type and phyB mutant seedlings. These results suggest that, although GAs are required for hypocotyl cell elongation, phyB does not act primarily by changing total seedling GA levels but rather by decreasing seedling responsiveness to GAs. This content is only available as a PDF. Copyright © 1996 by American Society of Plant Biologists This article is published and distributed under the terms of the Oxford University Press, Standard Journals Publication Model (https://academic.oup.com/journals/pages/open_access/funder_policies/chorus/standard_publication_model)
Plant Physiology – Oxford University Press
Published: Sep 1, 1996
Read and print from thousands of top scholarly journals.
Already have an account? Log in
Bookmark this article. You can see your Bookmarks on your DeepDyve Library.
To save an article, log in first, or sign up for a DeepDyve account if you don’t already have one.
Copy and paste the desired citation format or use the link below to download a file formatted for EndNote
Access the full text.
Sign up today, get DeepDyve free for 14 days.
All DeepDyve websites use cookies to improve your online experience. They were placed on your computer when you launched this website. You can change your cookie settings through your browser.