The Arabidopsis deetiolated2 mutant is blocked early in brassinosteroid biosynthesis.
Open Access
- 1 November 1997
- journal article
- Published by Oxford University Press (OUP) in Plant Cell
- Vol. 9 (11) , 1951-1962
- https://doi.org/10.1105/tpc.9.11.1951
Abstract
The Arabidopsis DEETIOLATED2 (DET2) gene has been cloned and shown to encode a protein that shares significant sequence identity with mammalian steroid 5 alpha-reductases. Loss of DET2 function causes many defects in Arabidopsis development that can be rescued by the application of brassinolide; therefore, we propose that DET2 encodes a reductase that acts at the first step of the proposed biosynthetic pathway--in the conversion of campesterol to campestanol. Here, we used biochemical measurements and biological assays to determine the precise biochemical defect in det2 mutants. We show that DET2 actually acts at the second step in brassinolide biosynthesis in the 5 alpha-reduction of (24R)-24-methylcholest-4-en-3-one, which is further modified to form campestanol. In feeding experiments using 2H6-labeled campesterol, no significant level of 2H6-labeled campestanol was detected in det2, whereas the wild type accumulated substantial levels. Using gas chromatography-selected ion monitoring analysis, we show that several presumed null alleles of det2 accumulated only 8 to 15% of the wild-type levels of campestanol. Moreover, in det2 mutants, the endogenous levels of (24R)-24-methylcholest-4-en-3-one increased by threefold, whereas the levels of all other measured brassinosteroids accumulated to < 10% of wild-type levels. Exogenously applied biosynthetic intermediates of brassinolide were found to rescue both the dark- and light-grown defects of det2 mutants. Together, these results refine the original proposed pathway for brassinolide and indicate that mutations in DET2 block the second step in brassinosteroid biosynthesis. These results reinforce the utility of combining genetic and biochemical analyses to studies of biosynthetic pathways and strengthen the argument that brassinosteroids play an essential role in Arabidopsis development.Keywords
This publication has 22 references indexed in Scilit:
- Molecular genetic studies confirm the role of brassinosteroids in plant growth and developmentThe Plant Journal, 1996
- Brassinosteroids Rescue the Deficiency of CYP90, a Cytochrome P450, Controlling Cell Elongation and De-etiolation in ArabidopsisPublished by Elsevier ,1996
- A Role for Brassinosteroids in Light-Dependent Development of Arabidopsis Science, 1996
- Molecular Cloning and Photoperiod-Regulated Expression of Gibberellin 20-Oxidase from the Long-Day Plant SpinachPlant Physiology, 1996
- The DIMINUTO gene of Arabidopsis is involved in regulating cell elongation.Genes & Development, 1995
- Fresh view of light signal transduction in plantsCell, 1994
- A FUSCA gene of Arabidopsis encodes a novel protein essential for plant development.Plant Cell, 1994
- Phenotypic and Genetic Analysis of det2, a New Mutant That Affects Light-Regulated Seedling Development in Arabidopsis.Plant Cell, 1991
- Arabidopsis thaliana mutant that develops as a light-grown plant in the absence of lightCell, 1989
- Inhibition of Dihydrotestosterone Formation: an Effective Means of Blocking Androgen Action in Hamster Sebaceous GlandJournal of Investigative Dermatology, 1974