Phycobilisome diffusion is required for light-state transitions in cyanobacterial

被引:107
作者
Joshua, S [1 ]
Mullineaux, CW [1 ]
机构
[1] UCL, Dept Biol, London WC1E 6BT, England
关键词
D O I
10.1104/pp.104.046110
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Phycobilisomes are the major accessory light-harvesting complexes of cyanobacteria and red algae. Studies using fluorescence recovery after photobleaching on cyanobacteria in vivo have shown that the phycobilisomes are mobile complexes that rapidly diffuse on the thylakoid membrane surface. By contrast, the PSII core complexes are completely immobile. This indicates that the association of phycobilisomes with reaction centers must be transient and unstable. Here, we show that when cells of the cyanobacterium Synechococcus sp. PCC7942 are immersed in buffers of high osmotic strength, the diffusion coefficient for the phycobilisomes is greatly decreased. This suggests that the interaction between phycobilisomes and reaction centers becomes much less transient under these conditions. We discuss the possible reasons for this. State transitions are a rapid physiological adaptation mechanism that regulates the way in which absorbed light energy is distributed between PSI and PSII. Immersing cells in high osmotic strength buffers inhibits state transitions by locking cells into whichever state they were in prior to addition of the buffer. The effect on state transitions is induced at the same buffer concentrations as the effect on phycobilisome diffusion. This implies that phycobilisome diffusion is required for state transitions. The main physiological role for phycobilisome mobility may be to allow such flexibility in light harvesting.
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页码:2112 / 2119
页数:8
相关论文
共 31 条
[1]   STATE-1-STATE-2 TRANSITIONS IN THE CYANOBACTERIUM SYNECHOCOCCUS 6301 ARE CONTROLLED BY THE REDOX STATE OF ELECTRON CARRIERS BETWEEN PHOTOSYSTEM-I AND PHOTOSYSTEM-II [J].
MULLINEAUX, CW ;
ALLEN, JF .
PHOTOSYNTHESIS RESEARCH, 1990, 23 (03) :297-311
[2]   Molecular recognition in thylakoid structure and function [J].
Allen, JF ;
Forsberg, J .
TRENDS IN PLANT SCIENCE, 2001, 6 (07) :317-326
[3]   A GENERAL-MODEL FOR REGULATION OF PHOTOSYNTHETIC UNIT FUNCTION BY PROTEIN-PHOSPHORYLATION [J].
ALLEN, JF ;
HOLMES, NG .
FEBS LETTERS, 1986, 202 (02) :175-181
[4]   The role of ApcD and ApcF in energy transfer from phycobilisomes to PSI and PSII in a cyanobacterium [J].
Ashby, MK ;
Mullineaux, CW .
PHOTOSYNTHESIS RESEARCH, 1999, 61 (02) :169-179
[5]   Phycobilisome mobility in the cyanobacterium Synechococcus sp PCC7942 is influenced by the trimerisation of Photosystem I [J].
Aspinwall, CL ;
Sarcina, M ;
Mullineaux, CW .
PHOTOSYNTHESIS RESEARCH, 2004, 79 (02) :179-187
[6]   STATE TRANSITIONS IN A PHYCOBILISOME-LESS MUTANT OF THE CYANOBACTERIUM SYNECHOCOCCUS SP PCC-7002 [J].
BRUCE, D ;
BRIMBLE, S ;
BRYANT, DA .
BIOCHIMICA ET BIOPHYSICA ACTA, 1989, 974 (01) :66-73
[7]  
CASTENHOLZ RW, 1988, METHOD ENZYMOL, V167, P68
[8]   A gene required for the regulation of photosynthetic light harvesting in the cyanobacterium Synechocystis 6803 [J].
Emlyn-Jones, D ;
Ashby, MK ;
Mullineaux, CW .
MOLECULAR MICROBIOLOGY, 1999, 33 (05) :1050-1058
[9]   STATE I-STATE-II TRANSITIONS IN THE THERMOPHILIC BLUE-GREEN-ALGA (CYANOBACTERIUM) SYNECHOCOCCUS-LIVIDUS [J].
FORK, DC ;
SATOH, K .
PHOTOCHEMISTRY AND PHOTOBIOLOGY, 1983, 37 (04) :421-427
[10]  
GANTT E, 1988, METHOD ENZYMOL, V167, P286