Influence of elevated temperature and pCO2 on the marine periphytic diatom Navicula distans and its associated organisms in culture

被引:16
作者
Baragi, Lalita V. [1 ]
Khandeparker, Lidita [1 ]
Anil, Arga C. [1 ]
机构
[1] CSIR, Natl Inst Oceanog, Acad Sci & Innovat Res AcSIR, Panaji 403004, Goa, India
关键词
Ocean acidification; Biofilm; Navicula distans; Picoperiphyte; Heterotrophic bacteria; CARBON CONCENTRATING MECHANISMS; HETEROTROPHIC BACTERIA; PHYTOPLANKTON GROWTH; NUTRIENT-UPTAKE; NITROGEN UPTAKE; CO2; BLOOM; SYNECHOCOCCUS; BIOFILMS; SEAWATER;
D O I
10.1007/s10750-015-2343-9
中图分类号
Q17 [水生生物学];
学科分类号
071004 ;
摘要
Influence of temperature and pCO(2), reflecting the future climatic scenario, on the marine periphytic diatom (Navicula distans) and its associated organisms was evaluated. Navicula distans along with its associated picoperiphyte and heterotrophic bacteria were exposed to two temperatures (30A degrees C-present day, and 34A degrees C-projected for year 2100) and pCO(2) levels (similar to 500 A mu atm-present day, and similar to 1500 A mu atm-projected for year 2100) in a 2 x 2 factorial design. It was observed that rising temperature reduced the abundance of N. distans and picoperiphyte, but increased that of heterotrophic bacteria. On the other hand, rising pCO(2) favoured the growth of N. distans and picoperiphyte and had no significant effect on the bacterial growth. Synergistically, rising temperature and pCO(2) had a negative effect on N. distans, and a positive effect on picoperiphyte and heterotrophic bacteria. Additionally, this also resulted in the reduction of diatom cell size. This study suggests that in the future climatic scenario, increased abundance of picoperiphyte and heterotrophic bacteria along with smaller N. distans cells might influence the carbon budget and may have a cascading effect on higher trophic levels.
引用
收藏
页码:127 / 142
页数:16
相关论文
共 63 条
[1]   Decoupling between bacteria and the surf-zone diatom Asterionellopsis glacialis at Cassino Beach, Brazil [J].
Abreu, PC ;
Rörig, LR ;
Garcia, V ;
Odebrecht, C ;
Biddanda, B .
AQUATIC MICROBIAL ECOLOGY, 2003, 32 (03) :219-228
[2]   A THEORETICAL-MODEL FOR NUTRIENT-UPTAKE IN PHYTOPLANKTON [J].
AKSNES, DL ;
EGGE, JK .
MARINE ECOLOGY PROGRESS SERIES, 1991, 70 (01) :65-72
[3]   Coupling of heterotrophic bacteria to phytoplankton bloom development at different pCO2 levels: a mesocosm study [J].
Allgaier, M. ;
Riebesell, U. ;
Vogt, M. ;
Thyrhaug, R. ;
Grossart, H. -P. .
BIOGEOSCIENCES, 2008, 5 (04) :1007-1022
[4]  
[Anonymous], 1998, ORNL/CDIAC-105
[5]  
[Anonymous], 2013, CLIMATE CHANGE 2013
[6]   THE PRODUCTION OF DISSOLVED ORGANIC-MATTER BY PHYTOPLANKTON AND ITS IMPORTANCE TO BACTERIA - PATTERNS ACROSS MARINE AND FRESH-WATER SYSTEMS [J].
BAINES, SB ;
PACE, ML .
LIMNOLOGY AND OCEANOGRAPHY, 1991, 36 (06) :1078-1090
[7]   Neither elevated nor reduced CO2 affects the photophysiological performance of the marine Antarctic diatom Chaetoceros brevis [J].
Boelen, Peter ;
de Poll, Willem H. van ;
van der Strate, Han J. ;
Neven, Ika A. ;
Beardall, John ;
Buma, Anita G. J. .
JOURNAL OF EXPERIMENTAL MARINE BIOLOGY AND ECOLOGY, 2011, 406 (1-2) :38-45
[8]  
Bourne N., 1989, MANUAL SCALLOP CULTU
[9]   Global phytoplankton decline over the past century [J].
Boyce, Daniel G. ;
Lewis, Marlon R. ;
Worm, Boris .
NATURE, 2010, 466 (7306) :591-596
[10]   INCORPORATION OF VIRUSES INTO THE BUDGET OF MICROBIAL C-TRANSFER - A 1ST APPROACH [J].
BRATBAK, G ;
HELDAL, M ;
THINGSTAD, TF ;
RIEMANN, B ;
HASLUND, OH .
MARINE ECOLOGY PROGRESS SERIES, 1992, 83 (2-3) :273-280