Comparative adaptations of Aphanizomenon and Anabaena for nitrogen fixation under weak irradiance

被引:15
作者
Bradburn, Mark J. [1 ]
Lewis, William M., Jr. [1 ]
McCutchan, James H., Jr. [1 ]
机构
[1] Univ Colorado, Ctr Limnol, Cooperat Inst Res Environm Sci, Dept Ecol & Evolutionary Biol, Boulder, CO 80309 USA
关键词
cyanobacteria; lake mixing; lake transparency; nitrogen fixation; photosynthesis; ACETYLENE-REDUCTION; NATURAL-WATERS; LAKES; CYANOBACTERIA; LIGHT; PHYTOPLANKTON; LIMITATION; PHOSPHORUS; PHOTOSYNTHESIS; MODELS;
D O I
10.1111/j.1365-2427.2012.02765.x
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
1. In situ measurements of nitrogen fixation rates for Aphanizomenon in fertile Colorado lakes with low inorganic nitrogen concentrations demonstrated high efficiency of nitrogen fixation at low irradiance. 2. For study populations, rates of N-2 fixation in darkness and with alternating exposure to light and darkness were a higher percentage of light-saturated rates for Aphanizomenon than for Anabaena, suggesting storage of reduced metabolites at high irradiance that are used subsequently by Aphanizomenon when cells are forced by mixing into zones of low irradiance. Also, saturation of N-2 fixation occurred over a lower range of irradiance for Aphanizomenon than for Anabaena. 3. High efficiency of N-2 fixation in Aphanizomenon at low or fluctuating irradiance is complementary to its previously demonstrated high efficiency of photosynthesis at low irradiance. Nitrogen fixation rate was also strongly related to DIN concentration; fixation was highest at low DIN (maximum < 5 mu g L-1) but was also most vulnerable to photoinhibition under such conditions. 4. The fixation capabilities of Aphanizomenon under weak or varying irradiance could explain its commonly observed domination over Anabaena when transparency is low and available nitrogen is scarce.
引用
收藏
页码:1042 / 1049
页数:8
相关论文
共 21 条
[1]  
Capone DG., 1993, HDB METHODS AQUATIC, P621
[2]   FITTING NONLINEAR MODELS TO BIOLOGICAL DATA BY MARQUARDTS ALGORITHM [J].
CONWAY, GR ;
GLASS, NR ;
WILCOX, JC .
ECOLOGY, 1970, 51 (03) :503-&
[3]   Comparison of the light-limited growth of the nitrogen-fixing cyanobacteria Anabaena and Aphanizomenon [J].
De Nobel, WT ;
Matthijs, HCP ;
Von Elert, E ;
Mur, LR .
NEW PHYTOLOGIST, 1998, 138 (04) :579-587
[4]   Predicting Cyanobacteria dominance in lakes [J].
Downing, JA ;
Watson, SB ;
McCauley, E .
CANADIAN JOURNAL OF FISHERIES AND AQUATIC SCIENCES, 2001, 58 (10) :1905-1908
[5]   Do cyanobacteria dominate in eutrophic lakes because they fix atmospheric nitrogen? [J].
Ferber, LR ;
Levine, SN ;
Lini, A ;
Livingston, GP .
FRESHWATER BIOLOGY, 2004, 49 (06) :690-708
[6]   AQUATIC ACETYLENE-REDUCTION TECHNIQUES - SOLUTIONS TO SEVERAL PROBLEMS [J].
FLETT, RJ ;
HAMILTON, RD ;
CAMPBELL, NER .
CANADIAN JOURNAL OF MICROBIOLOGY, 1976, 22 (01) :43-51
[7]   DIRECT MEASUREMENTS OF STEADY-STATE KINETICS OF CYANOBACTERIAL N-2 UPTAKE BY MEMBRANE-LEAK MASS-SPECTROMETRY AND COMPARISONS BETWEEN NITROGEN-FIXATION AND ACETYLENE-REDUCTION [J].
JENSEN, BB ;
COX, RP .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 1983, 45 (04) :1331-1337
[8]  
Koroleff F., 1976, METHODS SEAWATER ANA, P126
[9]  
LAGLER CL, 1982, WATER RES, V16, P1451
[10]   THE LIGHT RESPONSE OF NITROGEN-FIXATION IN LAKE VALENCIA, VENEZUELA [J].
LEWIS, WM ;
LEVINE, SN .
LIMNOLOGY AND OCEANOGRAPHY, 1984, 29 (04) :894-900