Photosynthetic responses in Phaeocystis antarctica towards varying light and iron conditions

被引:58
作者
van Leeuwe, M. A.
Stefels, J.
机构
[1] Univ Groningen, Ctr Biol, Lab Plant Physiol, NL-9750 AA Haren, Netherlands
[2] Univ Groningen, Ctr Biol, Dept Marine Biol, Haren, Netherlands
关键词
fluorescence; iron; light; Phaeocystis; pigments; Xanthophyll cycling;
D O I
10.1007/s10533-007-9083-5
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The effects of iron limitation on photoacclimation to a dynamic light regime were studied in Phaeocystis antarctica. Batch cultures were grown under a sinusoidal light regime, mimicking vertical mixing, under both iron-sufficient and -limiting conditions. Iron-replete cells responded to changes in light intensity by rapid xanthophyll cycling. Maximum irradiance coincided with maximum ratios of diatoxanthin/diadinoxanthin (dt/dd). The maximum quantum yield of photosynthesis (F-v /F-m) was negatively related to both irradiance and dt/dd. Full recovery of F-v /F-m by the end of the light period suggested successful photoacclimation. Iron-limited cells displayed characteristics of high light acclimation. The ratio of xanthophyll pigments to chlorophyll a was three times higher compared to iron-replete cells. Down-regulation of photosynthetic activity was moderated. It is argued that under iron limitation cells maintain a permanent state of high energy quenching to avoid photoinhibition during exposure to high irradiance. Iron-limited cells could maintain a high growth potential due to an increased absorption capacity as recorded by in vivo absorption, which balanced a decrease in F-v/F-m . The increase in the chlorophyll a-specific absorption cross section was related to an increase in carotenoid pigments and a reduction in the package effect. These experiments show that P. antarctica can acclimate successfully to conditions as they prevail in the Antarctic ocean, which may explain the success of this species.
引用
收藏
页码:61 / 70
页数:10
相关论文
共 40 条
[1]   The grand design of photosynthesis: Acclimation of the photosynthetic apparatus to environmental cues [J].
Anderson, JM ;
Chow, WS ;
Park, YI .
PHOTOSYNTHESIS RESEARCH, 1995, 46 (1-2) :129-139
[2]   Phytoplankton community structure and the drawdown of nutrients and CO2 in the Southern Ocean [J].
Arrigo, KR ;
Robinson, DH ;
Worthen, DL ;
Dunbar, RB ;
DiTullio, GR ;
VanWoert, M ;
Lizotte, MP .
SCIENCE, 1999, 283 (5400) :365-367
[3]  
CROCKER KM, 1995, MAR BIOL, V124, P355
[4]   Synthesis of iron fertilization experiments:: From the iron age in the age of enlightenment -: art. no. C09S16 [J].
de Baar, HJW ;
Boyd, PW ;
Coale, KH ;
Landry, MR ;
Tsuda, A ;
Assmy, P ;
Bakker, DCE ;
Bozec, Y ;
Barber, RT ;
Brzezinski, MA ;
Buesseler, KO ;
Boyé, M ;
Croot, PL ;
Gervais, F ;
Gorbunov, MY ;
Harrison, PJ ;
Hiscock, WT ;
Laan, P ;
Lancelot, C ;
Law, CS ;
Levasseur, M ;
Marchetti, A ;
Millero, FJ ;
Nishioka, J ;
Nojiri, Y ;
van Oijen, T ;
Riebesell, U ;
Rijkenberg, MJA ;
Saito, H ;
Takeda, S ;
Timmermans, KR ;
Veldhuis, MJW ;
Waite, AM ;
Wong, CS .
JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2005, 110 (C9) :1-24
[5]   PHOTOPROTECTION AND OTHER RESPONSES OF PLANTS TO HIGH LIGHT STRESS [J].
DEMMIGADAMS, B ;
ADAMS, WW .
ANNUAL REVIEW OF PLANT PHYSIOLOGY AND PLANT MOLECULAR BIOLOGY, 1992, 43 :599-626
[6]  
Flameling IA, 1995, PHOTOSYNTHESIS: FROM LIGHT TO BIOSPHERE, VOL 5, P797
[7]  
FLAMELING IA, 1998, THESIS U NIJMEGEN
[8]   Variability in chlorophyll α specific absorption coefficient in marine phytoplankton as a function of cell size and irradiance [J].
Fujiki, T ;
Taguchi, S .
JOURNAL OF PLANKTON RESEARCH, 2002, 24 (09) :859-874
[9]   THE ROLE OF IRON IN PHYTOPLANKTON PHOTOSYNTHESIS, AND THE POTENTIAL FOR IRON-LIMITATION OF PRIMARY PRODUCTIVITY IN THE SEA [J].
GEIDER, RJ ;
LAROCHE, J .
PHOTOSYNTHESIS RESEARCH, 1994, 39 (03) :275-301
[10]   RESPONSE OF THE PHOTOSYNTHETIC APPARATUS OF PHAEODACTYLUM-TRICORNUTUM (BACILLARIOPHYCEAE) TO NITRATE, PHOSPHATE, OR IRON STARVATION [J].
GEIDER, RJ ;
LAROCHE, J ;
GREENE, RM ;
OLAIZOLA, M .
JOURNAL OF PHYCOLOGY, 1993, 29 (06) :755-766