Influence of Light on Carbon Utilization in Aerobic Anoxygenic Phototrophs

被引:61
作者
Hauruseu, Dzmitry [1 ,2 ]
Koblizek, Michal [1 ,2 ]
机构
[1] Inst Microbiol CAS, Dept Phototroph Microorganisms Algatech, Trebon, Czech Republic
[2] Univ S Bohemia, Fac Sci, Ceske Budejovice, Czech Republic
关键词
PHOTOSYNTHETIC BACTERIUM; GEN; NOV; BACTERIOCHLOROPHYLL-A; GENOME SEQUENCE; SURFACE WATERS; GROWTH; STRAIN; COMMUNITIES; DIVERSITY; APPARATUS;
D O I
10.1128/AEM.01747-12
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Aerobic anoxygenic phototrophs contain photosynthetic reaction centers composed of bacteriochlorophyll. These organisms are photoheterotrophs, as they require organic carbon substrates for their growth whereas light-derived energy has only an auxiliary function. To establish the contribution of light energy to their metabolism, we grew the phototrophic strain Erythrobacter sp. NAP1 in a carbon-limited chemostat regimen on defined carbon sources (glutamate, pyruvate, acetate, and glucose) under conditions of different light intensities. When grown in a light-dark cycle, these bacteria accumulated 25% to 110% more biomass in terms of carbon than cultures grown in the dark. Cultures grown on glutamate accumulated the most biomass at moderate light intensities of 50 to 150 mu mol m(-2) s(-1) but were inhibited at higher light intensities. In the case of pyruvate, we did not find any inhibition of growth by high irradiance. The extent of anaplerotic carbon fixation was detemined by radioactive bicarbonate incorporation assays. While the carboxylation activity provided 4% to 11% of the cellular carbon in the pyruvate-grown culture, in the glutamate-grown cells it provided only approximately 1% of the carbon. Additionally, we tested the effect of light on respiration and photosynthetic electron flow. With increasing light intensity, respiration decreased to approximately 25% of its dark value and was replaced by photophosphorylation. The additional energy from light allows the aerobic an oxygenic phototrophs to accumulate the supplied organic carbon which would otherwise be respired. The higher efficiency of organic carbon utilization may provide an important competitive advantage during growth under carbon-limited conditions.
引用
收藏
页码:7414 / 7419
页数:6
相关论文
共 37 条
[1]   Growth and bacteriochlorophyll a formation in taxonomically diverse aerobic anoxygenic phototrophic bacteria in chemostat culture:: Influence of light regimen and starvation [J].
Biebl, Hanno ;
Wagner-Doebler, Irene .
PROCESS BIOCHEMISTRY, 2006, 41 (10) :2153-2159
[2]   Respiratory electron transport and light-induced energy transduction in membranes from the aerobic photosynthetic bacterium Roseobacter denitrificans [J].
Candela, M ;
Zaccherini, E ;
Zannoni, D .
ARCHIVES OF MICROBIOLOGY, 2001, 175 (03) :168-177
[3]   Aerobic anoxygenic phototrophic bacteria in the Mid-Atlantic Bight and the North Pacific Gyre [J].
Cottrell, MT ;
Mannino, A ;
Kirchman, DL .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 2006, 72 (01) :557-564
[4]   A new environment for aerobic anoxygenic phototrophic bacteria: biological soil crusts [J].
Csotonyi, Julius T. ;
Swiderski, Jolantha ;
Stackebrandt, Erko ;
Yurkov, Vladimir .
ENVIRONMENTAL MICROBIOLOGY REPORTS, 2010, 2 (05) :651-656
[5]   Bacterial growth efficiency in natural aquatic systems [J].
del Giorgio, PA ;
Cole, JJ .
ANNUAL REVIEW OF ECOLOGY AND SYSTEMATICS, 1998, 29 :503-541
[6]   Respiration rates in bacteria exceed phytoplankton production in unproductive aquatic systems [J].
delGiorgio, PA ;
Cole, JJ ;
Cimbleris, A .
NATURE, 1997, 385 (6612) :148-151
[7]   Microbial communities of the stratified soda Lake Doroninskoe (Transbaikal region) [J].
Gorlenko, V. M. ;
Buryukhaev, S. P. ;
Matyugina, E. B. ;
Borzenko, S. V. ;
Namsaraev, Z. B. ;
Bryantseva, I. A. ;
Boldareva, E. N. ;
Sorokin, D. Yu. ;
Namsaraev, B. B. .
MICROBIOLOGY, 2010, 79 (03) :390-401
[8]   OCCURRENCE OF BACTERIOCHLOROPHYLL-A IN A STRAIN OF AN AEROBIC HETEROTROPHIC BACTERIUM [J].
HARASHIMA, K ;
SHIBA, T ;
TOTSUKA, T ;
SIMIDU, U ;
TAGA, N .
AGRICULTURAL AND BIOLOGICAL CHEMISTRY, 1978, 42 (08) :1627-1628
[9]  
HARASHIMA K, 1982, PLANT CELL PHYSIOL, V23, P185
[10]  
HARASHIMA K, 1987, PLANT CELL PHYSIOL, V28, P365