Effect of the Nitrogen Source on Phycobiliprotein Synthesis and Cell Reserves in A Chromatically Adapting Filamentous Cyanobacterium
- 1 March 1996
- journal article
- Published by Microbiology Society in Microbiology
- Vol. 142 (3) , 611-622
- https://doi.org/10.1099/13500872-142-3-611
Abstract
Cyanobacteria can utilize nitrate or ammonium as a source of fixed nitrogen for cell growth. In the filamentous Calothrix sp. strain PCC 7601, these two sources of nitrogen differently influenced the phycobiliprotein composition of the phycobilisomes, the major light-harvesting antennae. When compared to nitrate, growth in the presence of ammonium resulted in intracellular steadystate levels 35% lower for phycoerythrin and 46% higher for phycocyanin. Besides these differences in cell pigmentation, a rapid but transient accumulation of cyanophycin granule polypeptide occurred in ammoniumgrown cells, while these macromolecules were not detected in cells grown with nitrate. In contrast, glycogen reserves displayed a dynamic pattern of accumulation and disappearance during cell growth which varied only slightly with the nitrogen source. The observed changes in cell pigmentation are reminiscent of the phenomenon of complementary chromatic adaptation, in which green and red wavelengths promote the syntheses of phycoerythrin and phycocyanin-2, respectively. As in complementary chromatic adaptation, the regulation of synthesis of phycoerythrin and phycocyanin-2 by the nitrogen source occurred mainly at the mRNA level. Moreover, the transcriptional start sites for the expression of the cpeBA and the cpc2 operons, which respectively encode the two subunits of phycoerythrin and phycocyanin-2, were the same in cells grown in nitrate or ammonium, and identical to those in green- and red-light-grown cells. The results of this study suggest that acclimation to the spectral light quality and to the nitrogen source share some common regulatory elements.Keywords
This publication has 60 references indexed in Scilit:
- Biosynthesis of Cyanobacterial Tetrapyrrole Pigments: Hemes, Chlorophylls, and PhycobilinsPublished by Springer Nature ,1994
- Electron Transport Regulates Cellular Differentiation in the Filamentous Cyanobacterium CalothrixPlant Cell, 1993
- Chlorosis induced by nutrient deprivation in Synechococcus sp. strain PCC 7942: not all bleaching is the sameJournal of Bacteriology, 1992
- Cyanobacterial Phycobilisomes: Progress toward Complete Structural and Functional Analysis via Molecular GeneticsPublished by Elsevier ,1991
- CYANOBACTERIAL CELL INCLUSIONSAnnual Review of Microbiology, 1984
- Ammonia uptake and retention in some cyanobacteriaArchiv für Mikrobiologie, 1984
- Effects of Chromatic Illumination on Cyanobacterial PhycobilisomesEuropean Journal of Biochemistry, 1981
- Nitrogen limitation and recovery in the cyanobacterium Aphanocapsa 6308Archiv für Mikrobiologie, 1980
- C-phycocyanin as a storage protein in the blue-green alga Spirulina platensisArchiv für Mikrobiologie, 1980
- Nitrogen chlorosis in blue-green algaeArchiv für Mikrobiologie, 1969