Etioplast Differentiation in Arabidopsis: Both PORA and PORB Restore the Prolamellar Body and Photoactive Protochlorophyllide–F655 to the cop1 Photomorphogenic Mutant
Open Access
- 1 February 1998
- journal article
- Published by Oxford University Press (OUP) in Plant Cell
- Vol. 10 (2) , 283-296
- https://doi.org/10.1105/tpc.10.2.283
Abstract
The etioplast plastid type of dark-grown angiosperms is defined by the accumulation of the chlorophyll (Chl) precursor protochlorophyllide (Pchlide) and the presence of the paracrystalline prolamellar body (PLB) membrane. Both features correlate with the presence of NADPH:Pchlide oxidoreductase (POR), a light-dependent enzyme that reduces photoactive Pchlide–F655 to chlorophyllide and plays a key role in chloroplast differentiation during greening. Two differentially expressed and regulated POR enzymes, PORA and PORB, have recently been discovered in angiosperms. To investigate the hypothesis that etioplast differentiation requires PORA, we have constitutively overexpressed PORA and PORB in the Arabidopsis wild type and in the constitutive photomorphogenic cop1-18 (previously det340) mutant, which is deficient in the PLB and Pchlide–F655. In both genetic backgrounds, POR overexpression increased PLB size, the ratio of Pchlide–F655 to nonphotoactive Pchl[ide]–F632, and the amount of Pchlide–F655. Dramatically, restoration of either PORA or PORB to the cop1 mutant led to the formation of etioplasts containing an extensive PLB and large amounts of photoactive Pchlide–F655.Keywords
This publication has 37 references indexed in Scilit:
- Overexpression of light‐dependent PORA or PORB in plants depleted of endogenous POR by far‐red light enhances seedling survival in white light and protects against photooxidative damageThe Plant Journal, 1997
- Protochlorophyllide Reduction: a Key Step in the Greening of PlantsPlant and Cell Physiology, 1996
- LIGHT CONTROL OF SEEDLING DEVELOPMENTAnnual Review of Plant Biology, 1996
- Far-red light blocks greening of Arabidopsis seedlings via a phytochrome A-mediated change in plastid development.Plant Cell, 1996
- Two NADPH:Protochlorophyllide Oxidoreductases in Barley: Evidence for the Selective Disappearance of PORA during the Light-Induced Greening of Etiolated Seedlings.Plant Cell, 1995
- A FUSCA gene of Arabidopsis encodes a novel protein essential for plant development.Plant Cell, 1994
- Initial characterization of a pea mutant with light-independent photomorphogenesis.Plant Cell, 1992
- Detection of the photoactive protochlorophyllide‐protein complex in the light during the greening of barleyFEBS Letters, 1992
- Energy transfer between protochlorophyllide molecules: Evidence for multiple chromophores in the photoactive protochlorophyllide-protein complex in vivo and in vitroJournal of Molecular Biology, 1970
- The relation between structure and pigments during the first stages of proplastid greeningBiochimica et Biophysica Acta (BBA) - Biophysics including Photosynthesis, 1966