Phenotypic characterization of a photomorphogenic mutant
- 16 August 2004
- journal article
- Published by Wiley in The Plant Journal
- Vol. 39 (5) , 747-760
- https://doi.org/10.1111/j.1365-313x.2004.02148.x
Abstract
Light is arguably the most important abiotic factor controlling plant growth and development throughout their life cycle. Plants have evolved sophisticated light-sensing mechanisms to monitor fluctuations in light quality, intensity, direction and periodicity (day length). In Arabidopsis, three families of photoreceptors have been identified by molecular genetic studies. The UV-A/blue light receptors cryptochromes and the red/far-red receptors phytochromes control an overlapping set of responses including photoperiodic flowering induction and de-etiolation. Phototropins are the primary photoreceptors for a set of specific responses to UV-A/blue light such as phototropism, chloroplast movement and stomatal opening. Mutants affecting a photoreceptor have a characteristic phenotype. It is therefore possible to determine the specific developmental responses and the photoreceptor pathway(s) affected in a mutant by performing an appropriate set of photobiological and genetic experiments. In this paper, we outline the principal and easiest experiments that can be performed to obtain a first indication about the nature of the photobiological defect in a given mutant.Keywords
This publication has 81 references indexed in Scilit:
- Mutant Analyses Define Multiple Roles for Phytochrome C in Arabidopsis PhotomorphogenesisPlant Cell, 2003
- Isolation and Characterization of phyC Mutants in Arabidopsis Reveals Complex Crosstalk between Phytochrome Signaling PathwaysPlant Cell, 2003
- Second Positive Phototropism Results from Coordinated Co-Action of the Phototropins and CryptochromesPlant Physiology, 2003
- Phytochrome control of flowering is temperature sensitive and correlates with expression of the floral integrator FTThe Plant Journal, 2003
- TheArabidopsis SRR1gene mediates phyB signaling and is required for normal circadian clock functionGenes & Development, 2003
- Phytochromes and seed germinationSeed Science Research, 1998
- An Arabidopsis Mutant Hypersensitive to Red and Far-Red Light SignalsPlant Cell, 1998
- Chimeric Proteins between cry1 and cry2 Arabidopsis Blue Light Photoreceptors Indicate Overlapping Functions and Varying Protein StabilityPlant Cell, 1998
- Roles of different phytochromes in Arabidopsis photomorphogenesisPlant, Cell & Environment, 1997
- Far-red light blocks greening of Arabidopsis seedlings via a phytochrome A-mediated change in plastid development.Plant Cell, 1996