Photoheterotrophic Microbes in the Arctic Ocean in Summer and Winter

被引:118
作者
Cottrell, Matthew T. [1 ]
Kirchman, David L. [1 ]
机构
[1] Univ Delaware, Coll Earth Ocean & Environm, Lewes, DE 19958 USA
关键词
ANOXYGENIC PHOTOTROPHIC BACTERIA; RIBOSOMAL-RNA GENES; LEUCINE INCORPORATION; COMMUNITY COMPOSITION; SEASONAL OCCURRENCE; BIOMASS PRODUCTION; MARINE; ATLANTIC; LIGHT; PROTEORHODOPSIN;
D O I
10.1128/AEM.00117-09
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
Photoheterotrophic microbes, which are capable of utilizing dissolved organic materials and harvesting light energy, include coccoid cyanobacteria ( Synechococcus and Prochlorococcus), aerobic anoxygenic phototrophic (AAP) bacteria, and proteorhodopsin (PR)-containing bacteria. Our knowledge of photoheterotrophic microbes is largely incomplete, especially for high-latitude waters such as the Arctic Ocean, where photoheterotrophs may have special ecological relationships and distinct biogeochemical impacts due to extremes in day length and seasonal ice cover. These microbes were examined by epifluorescence microscopy, flow cytometry, and quantitative PCR (QPCR) assays for PR and a gene diagnostic of AAP bacteria ( pufM). The abundance of AAP bacteria and PR-containing bacteria decreased from summer to winter, in parallel with a threefold decrease in the total prokaryotic community. In contrast, the abundance of Synechococcus organisms did not decrease in winter, suggesting that their growth was supported by organic substrates. Results from QPCR assays revealed no substantial shifts in the community structure of AAP bacteria and PR-containing bacteria. However, Arctic PR genes were different from those found at lower latitudes, and surprisingly, they were not similar to those in Antarctic coastal waters. Photoheterotrophic microbes appear to compete successfully with strict heterotrophs during winter darkness below the ice, but AAP bacteria and PR-containing bacteria do not behave as superior competitors during the summer.
引用
收藏
页码:4958 / 4966
页数:9
相关论文
共 59 条
[31]   The genome of a motile marine Synechococcus [J].
Palenik, B ;
Brahamsha, B ;
Larimer, FW ;
Land, M ;
Hauser, L ;
Chain, P ;
Lamerdin, J ;
Regala, W ;
Allen, EE ;
McCarren, J ;
Paulsen, I ;
Dufresne, A ;
Partensky, F ;
Webb, EA ;
Waterbury, J .
NATURE, 2003, 424 (6952) :1037-1042
[32]  
Parsons TR., 1984, A manual for chemical and biological methods in seawater analysis
[33]   Prochlorococcus, a marine photosynthetic prokaryote of global significance [J].
Partensky, F ;
Hess, WR ;
Vaulot, D .
MICROBIOLOGY AND MOLECULAR BIOLOGY REVIEWS, 1999, 63 (01) :106-+
[34]  
Partensky F., 1999, Bull. Insfituf Ocean, V19, P457
[35]   Heterotrophic and Autotrophic Microbial Populations in Cold Perennial Springs of the High Arctic [J].
Perreault, Nancy N. ;
Greer, Charles W. ;
Andersen, Dale T. ;
Tille, Stefanie ;
Lacrampe-Couloume, Georges ;
Lollar, Barbara Sherwood ;
Whyte, Lyle G. .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 2008, 74 (22) :6898-6907
[36]   THE USE OF DAPI FOR IDENTIFYING AND COUNTING AQUATIC MICROFLORA [J].
PORTER, KG ;
FEIG, YS .
LIMNOLOGY AND OCEANOGRAPHY, 1980, 25 (05) :943-948
[37]   Ecology of a novel Synechococcus clade occurring in dense populations in saline Antarctic lakes [J].
Powell, LM ;
Bowman, JP ;
Skerratt, JH ;
Franzmann, PD ;
Burton, HR .
MARINE ECOLOGY PROGRESS SERIES, 2005, 291 :65-80
[38]   MrBayes 3: Bayesian phylogenetic inference under mixed models [J].
Ronquist, F ;
Huelsenbeck, JP .
BIOINFORMATICS, 2003, 19 (12) :1572-1574
[39]   Integration of microbial ecology and statistics: a test to compare gene libraries [J].
Schloss, PD ;
Larget, BR ;
Handelsman, J .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 2004, 70 (09) :5485-5492
[40]   Impact of light on marine bacterioplankton community structure [J].
Schwalbach, MS ;
Brown, M ;
Fuhrman, JA .
AQUATIC MICROBIAL ECOLOGY, 2005, 39 (03) :235-245