REARRANGEMENT OF LIGHT-HARVESTING BACTERIOCHLOROPHYLL HOMOLOGS AS A RESPONSE OF GREEN SULFUR BACTERIA TO LOW-LIGHT INTENSITIES

被引:81
作者
BORREGO, CM [1 ]
GARCIAGIL, LJ [1 ]
机构
[1] UNIV GIRONA,HOSP 6,INST AQUAT ECOL,E-17071 GIRONA,SPAIN
关键词
BACTERIOCHLOROPHYLL HOMOLOGS; CHLOROBIUM; LIGHT ADAPTATION; LIGHT HARVESTING PIGMENTS; ENERGY TRANSFER;
D O I
10.1007/BF00032232
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
The pigment composition of two species of green-colored BChl c-containing green sulfur bacteria (Chlorobium limicola and C. chlorovibrioides) and two species of brown-colored BChl e-containing ones (C. phaeobacteroides and C. phaeovibrioides) incubated at different light intensities have been studied. All species responded to the reduction of light intensity from 50 to 1 mu Einstein(E) m(-2) s(-1) by an increase in the specific content of light harvesting pigments, bacteriochlorophylls and carotenoids. At critical light intensities (0.5 to 0.1 mu E m(-2) s(-1)) only brown-colored chlorobia were able to grow, though at low specific rates (0.002 days(-1) mg prot(-1)). High variations in the relative content of farnesyl-bacteriochlorophyll homologues were found, in particular BChl e(1) and BChl e(4), which were tentatively identified as [M, E] and [I, E] BChl(F) e, respectively. The former was almost completely lost upon reduction of light intensity from 50 to 0.1 mu E m(-2) s(-1), whereas the latter increased from 7.2 to 38.4% and from 13.6 to 42.0% in C. phaeobacteroides and C. phaeovibrioides, respectively. This increase in the content of highly alkylated pigment molecules inside the chlorosomes of brown species is interpreted as a physiological mechanism to improve the efficiency of energy transfer towards the reaction center. This study provides some clues for understanding the physiological basis of the adaptation of brown species to extremely low light intensities.
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页码:21 / 30
页数:10
相关论文
共 42 条
[1]  
BLANKENSHIP RE, 1990, CURRENT RES PHOTOSYN, V2, P17
[2]  
BLANKENSHIP RE, 1988, LIGHT ENERGY TRANSDU, P32
[3]   RED SHIFT OF ABSORPTION MAXIMA IN CHLOROBIINEAE THROUGH ENZYMATIC METHYLATION OF THEIR ANTENNA BACTERIOCHLOROPHYLLS [J].
BOBE, FW ;
PFENNIG, N ;
SWANSON, KL ;
SMITH, KM .
BIOCHEMISTRY, 1990, 29 (18) :4340-4348
[4]   SEPARATION OF BACTERIOCHLOROPHYLL HOMOLOGS FROM GREEN PHOTOSYNTHETIC SULFUR BACTERIA BY REVERSED-PHASE HPLC [J].
BORREGO, CM ;
GARCIAGIL, LJ .
PHOTOSYNTHESIS RESEARCH, 1994, 41 (01) :157-164
[5]   ISOLATION OF A BCHL-C MUTANT FROM CHLOROBIUM WITH BCHL-D BY CULTIVATION AT LOW LIGHT-INTENSITY [J].
BROCHDUE, M ;
ORMEROD, JG .
FEMS MICROBIOLOGY LETTERS, 1978, 3 (05) :305-308
[6]   EFFECT OF LIGHT-INTENSITY ON VESICLE FORMATION IN CHLOROBIUM [J].
BROCHDUE, M ;
ORMEROD, JG ;
FJERDINGEN, BS .
ARCHIVES OF MICROBIOLOGY, 1978, 116 (03) :269-274
[7]   MICROBIAL LIFE AT 90 C - SULFUR BACTERIA OF BOULDER SPRING [J].
BROCK, TD ;
BROCK, ML ;
BOTT, TL ;
EDWARDS, MR .
JOURNAL OF BACTERIOLOGY, 1971, 107 (01) :303-&
[8]   ANTENNA ORGANIZATION IN GREEN PHOTOSYNTHETIC BACTERIA .1. OLIGOMERIC BACTERIOCHLOROPHYLL C AS A MODEL FOR THE 740-NM ABSORBING BACTERIOCHLOROPHYLL-C IN CHLOROFLEXUS-AURANTIACUS CHLOROSOMES [J].
BRUNE, DC ;
NOZAWA, T ;
BLANKENSHIP, RE .
BIOCHEMISTRY, 1987, 26 (26) :8644-8652
[9]  
CAPLE MB, 1978, J BIOL CHEM, V253, P6730
[10]  
CAUSGROVE TP, 1990, PHOTOSYNTH RES, V26, P39, DOI 10.1007/BF00048975