ELECTRON-TRANSPORT REGULATES CELLULAR-DIFFERENTIATION IN THE FILAMENTOUS CYANOBACTERIUM CALOTHRIX

被引:52
作者
CAMPBELL, D [1 ]
HOUMARD, J [1 ]
DEMARSAC, NT [1 ]
机构
[1] INST PASTEUR, CNRS,URA 1129,UNITE PHYSIOL MICROBIENNE, 28 RUE DOCTEUR ROUX, F-75724 PARIS 15, FRANCE
关键词
D O I
10.2307/3869725
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Differentiation of the filamentous cyanobacteria Calothrix sp strains PCC 7601 and PCC 7504 is regulated by light spectral quality. Vegetative filaments differentiate motile, gas-vacuolated hormogonia after transfer to fresh medium and incubation under red light. Hormogonia are transient and give rise to vegetative filaments, or to heterocystous filaments if fixed nitrogen is lacking. If incubated under green light after transfer to fresh medium, vegetative filaments do not differentiate hormogonia but may produce heterocysts directly, even in the presence of combined nitrogen. We used inhibitors of thylakoid electron transport (3-[3,4-dichlorophenyl]-1,1-dimethylurea and 2,5-dibromo-3-methyl-6-isopropyl-p-benzoquinone) to show that the opposing effects of red and green light on cell differentiation arise through differential excitations of photosystems I and II. Red light excitation of photosystem I oxidizes the plastoquinone pool, stimulating differentiation of hormogonia and inhibiting heterocyst differentiation. Conversely, net reduction of plastoquinone by green light excitation of photosystem II inhibits differentiation of hormogonia and stimulates heterocyst differentiation. This photoperception mechanism is distinct from the light regulation of complementary chromatic adaptation of phycobilisome constituents. Although complementary chromatic adaptation operates independently of the photocontrol of cellular differentiation, these two regulatory processes are linked, because the general expression of phycobiliprotein genes is transiently repressed during hormogonium differentiation. In addition, absorbance by phycobillsomes largely determines the light wavelengths that excite photosystem II, and thus the wavelengths that can imbalance electron transport.
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页码:451 / 463
页数:13
相关论文
共 50 条
[1]  
ADAMS DG, 1992, PROKARYOTIC STRUCTUR, V47, P341
[2]   PROTEIN-PHOSPHORYLATION IN REGULATION OF PHOTOSYNTHESIS [J].
ALLEN, JF .
BIOCHIMICA ET BIOPHYSICA ACTA, 1992, 1098 (03) :275-335
[3]  
ALMON H, 1988, METHOD ENZYMOL, V167, P459
[4]   COMPLEMENTARY CHROMATIC ADAPTATION IN A FILAMENTOUS BLUE-GREEN-ALGA [J].
BENNETT, A ;
BOGORAD, L .
JOURNAL OF CELL BIOLOGY, 1973, 58 (02) :419-435
[5]  
BRYANT DA, 1986, CAN B FISH AQUAT SCI, V214, P423
[6]   CHARACTERIZATION OF A GENE CONTROLLING HETEROCYST DIFFERENTIATION IN THE CYANOBACTERIUM ANABAENA-7120 [J].
BUIKEMA, WJ ;
HASELKORN, R .
GENES & DEVELOPMENT, 1991, 5 (02) :321-330
[7]   COMPLETE NUCLEOTIDE-SEQUENCE OF THE RED-LIGHT SPECIFIC SET OF PHYCOCYANIN GENES FROM THE CYANOBACTERIUM CALOTHRIX PCC 7601 [J].
CAPUANO, V ;
MAZEL, D ;
DEMARSAC, NT ;
HOUMARD, J .
NUCLEIC ACIDS RESEARCH, 1988, 16 (04) :1626-1626
[8]   TRANSCRIPTIONAL ANALYSIS OF THE CYANOBACTERIAL GVPABC OPERON IN DIFFERENTIATED CELLS - OCCURRENCE OF AN ANTISENSE RNA COMPLEMENTARY TO 3 OVERLAPPING TRANSCRIPTS [J].
CSISZAR, K ;
HOUMARD, J ;
DAMERVAL, T ;
DEMARSAC, NT .
GENE, 1987, 60 (01) :29-37
[9]   A DEVELOPMENTALLY REGULATED GVPABC OPERON IS INVOLVED IN THE FORMATION OF GAS VESICLES IN THE CYANOBACTERIUM CALOTHRIX-7601 [J].
DAMERVAL, T ;
HOUMARD, J ;
GUGLIELMI, G ;
CSISZAR, K ;
DEMARSAC, NT .
GENE, 1987, 54 (01) :83-92
[10]  
DAMERVAL T, 1991, PLANT CELL, V3, P191