Development and storage-protein synthesis in Brassica napus L. embryos in vivo and in vitro
- 1 October 1981
- journal article
- research article
- Published by Springer Nature in Planta
- Vol. 153 (1) , 64-74
- https://doi.org/10.1007/bf00385319
Abstract
Immature embryos of Brassica napus were cultured in vitro with and without various concentrations of germination inhibitors, and the progress of embryogeny was monitored by comparing accumulation of storage proteins in culture with the normal accumulation in seeds. The two major B. napus storage proteins (12S and 1.7S) were purified from seed extracts and analyzed by rocket immunoelectrophoresis (12S protein) or by sodium lauryl sulfate polyacrylamide gel electrophoresis (1.7S protein). During embryo development within seeds both the 12S and 1.7S proteins were first detected when the cotyledons were well developed (embryo dry weight, 0.4 mg), and each storage protein accumulated at an average rate of 26 μg d-1 during maximum deposition. Accumulation of the 1.7S protein stopped when the water content of the embryo began to decline (embryo DW, 2.7 mg), but accumulation of the 12S protein continued until seed maturity (embryo DW, 3.6 mg). At the end of embryo development the 12S and the 1.7S proteins comprised approx. 60 and 20% of the total salt-soluble protein, respectively. When embryos were removed from seeds at day 27, just as storage protein was starting to accumulate, and placed in culture on a basal medium, they precociously germinated within 3d, and incorporation of amino acids into the 12S storage protein dropped from 3% of total incorporation to less than 1%. If 10-6 M abscisic acid (ABA) was included in the medium, amino-acid incorporation into the 12S protein increased from 3% of total incorporation when embryos were placed into culture to 18%, 5d later, and the accumulation rate (27.1±2.6 μg embryo-1 d-1) matched the maximum rate observed in the seed. High osmotica, such as 0.29 M sucrose or mannitol, added to the basal medium, also inhibited precocious germination, but there was a lag period before 12S-protein synthesis rates equaled the rates on ABA media. These results indicate that some factor in the seed environment is necessary for storage-protein synthesis to proceed, and that ABA is a possible candidate.Keywords
This publication has 47 references indexed in Scilit:
- The Role of Gibberellin, Abscisic Acid, and Auxin in the Regulation of Developing Wheat GrainsJournal of Experimental Botany, 1979
- PREPARATION OF RAPESEED PROTEIN ISOLATES. Precipitation of Rapeseed Proteins in the Presence of Polyacids.Journal of Food Science, 1976
- Abscisic Acid Levels in Soybean Reproductive Structures during DevelopmentPlant Physiology, 1976
- THE DISTRIBUTION OF THE PROTEIN PHASEOLIN IN THE INTACT PLANT AND CULTURED TISSUES OF PHASEOLUS VULGARIS L.New Phytologist, 1976
- Response of Barley Aleurone Layers to Abscisic AcidPlant Physiology, 1976
- Effects of Abscisic Acid on Growth, RNA Metabolism, and Respiration in Germinating Bean AxesPlant Physiology, 1975
- Protein Breakdown and Formation of Protease in Attached and Detached Cotyledons of Phaseolus vulgaris L.Plant Physiology, 1973
- Control of the Formation of Amylases and Proteases in the Cotyledons of Germinating PeasPlant Physiology, 1973
- Polypeptides of the tail fibres of bacteriophage T4Journal of Molecular Biology, 1971
- Changes in the nitrogenous components of maturing rapeseed (Brassica napus)Canadian Journal of Botany, 1971