Differential petiole growth in Arabidopsis thaliana: photocontrol and hormonal regulation
- PMID: 19558423
- DOI: 10.1111/j.1469-8137.2009.02921.x
Differential petiole growth in Arabidopsis thaliana: photocontrol and hormonal regulation
Abstract
Environmental challenges such as low light intensity induce differential growth-driven upward leaf movement (hyponastic growth) in Arabidopsis thaliana. However, little is known about the physiological regulation of this response. Here, we studied how low light intensity is perceived and translated into a differential growth response in Arabidopsis. We used mutants defective in light, ethylene and auxin signaling, and in polar auxin transport, as well as chemical inhibitors, to analyze the mechanisms of low light intensity-induced differential growth. Our data indicate that photosynthesis-derived signals and blue light wavelengths affect petiole movements and that rapid induction of hyponasty by low light intensity involves functional cryptochromes 1 and 2, phytochrome-A and phytochrome-B photoreceptor proteins. The response is independent of ethylene signaling. Auxin and polar auxin transport, by contrast, play a role in low light intensity-induced differential petiole growth. We conclude that low light intensity-induced differential petiole growth requires blue light, auxin signaling and polar auxin transport and is, at least in part, genetically separate from well-characterized ethylene-induced differential growth.
Comment in
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Auxin perception and polar auxin transport are not always a prerequisite for differential growth.Plant Signal Behav. 2009 Sep;4(9):899-901. doi: 10.4161/psb.4.9.9528. Epub 2009 Sep 15. Plant Signal Behav. 2009. PMID: 19847122 Free PMC article.
References
-
- Ahmad M, Cashmore AR. 1993. HY4 gene of A thaliana encodes a protein with characteristics of a blue-light photoreceptor. Nature 366: 162-166.
-
- Ahmad M, Jarillo JA, Smirnova O, Cashmore AR. 1998. Cryptochrome blue-light photoreceptors of Arabidopsis implicated in phototropism. Nature 392: 720-723.
-
- Ball NG. 1969. Nastic responses. In: Wilkins MB, ed. The physiology of plant growth and development. London, UK: McGraw-Hill, 277-300.
-
- Ballaré CL. 1999. Keeping up with the neighbours: phytochrome sensing and other signalling mechanisms. Trends in Plant Science 4: 97.
-
- Ballaré CL, Casal JJ, Kendrick RE. 1991. Responses of light-grown wild-type and long-hypocotyl mutant cucumber seedlings to natural and simulated shade. Photochemistry and Photobiology 54: 819-826.
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