Heterotrophic bacteria in Antarctic lacustrine and glacial environments

被引:12
作者
Laybourn-Parry, Johanna [1 ]
Pearce, David [2 ]
机构
[1] Univ Bristol, Sch Geog Sci, Bristol Glaciol Ctr, Bristol BS8 1SS, Avon, England
[2] Northumbria Univ, Sch Appl Sci, Newcastle Upon Tyne NE1 8ST, Tyne & Wear, England
基金
美国国家科学基金会; 英国自然环境研究理事会;
关键词
Antarctica; Heterotrophic bacteria; Lakes Glaciers; Extremophiles; MCMURDO DRY VALLEYS; FRESH-WATER LAKES; BACTERIOPLANKTON COMMUNITY STRUCTURE; PLANKTONIC MICROBIAL COMMUNITY; LARGE OLIGOTROPHIC LAKE; ACE LAKE; SP-NOV; VESTFOLD HILLS; SEASONAL DYNAMICS; ORGANIC-CARBON;
D O I
10.1007/s00300-016-2011-1
中图分类号
X176 [生物多样性保护];
学科分类号
090705 ;
摘要
Antarctica has the greatest diversity of lakes types on the planet including freshwater, brackish, saline and hypersaline systems, epishelf lakes, ice shelf lakes and lakes and cryoconite holes on glacier surfaces. Beneath the continental ice sheet, there are hundreds of subglacial lakes. These systems are dominated by microbial food webs, with few or no metazoans. They are subject to continuous cold, low annual levels of photosynthetically active radiation and little or no allochthonous nutrient inputs from their catchments. Subglacial lakes function in darkness. Heterotrophic bacteria are a conspicuous and important component of the simple truncated food webs present. Bacterial abundance and production vary between freshwater and saline lakes, the latter being more productive. The bacterioplankton functions throughout the year, even in the darkness of winter when primary production is curtailed. In more extreme glacial habitats, biomass is even lower with low rates of production during the annual melt season. Inter-annual variation appears to be a characteristic of bacterial production in lakes. The factors that control production appear to be phosphorus limitation and grazing by heterotrophic and mixotrophic flagellate protozoa. The evidence suggests high rates of viral infection in bacteria and consequent viral lysis, resulting in significant carbon recycling, which undoubtedly supports bacterial growth in winter. The biodiversity of lacustrine Antarctic heterotrophic bacteria is still relatively poorly researched. However, most of the main phyla are represented and some patterns are beginning to emerge. One of the major problems is that data for heterotrophic bacteria are confined to a few regions served by well-resourced research stations, such as the McMurdo Dry Valleys, the Vestfold Hills and Signy Island. A more holistic multidisciplinary approach is needed to provide a detailed understanding of the functioning, biodiversity and evolution of these communities. This is particularly important as Antarctic lakes are regarded as sentinels of climate change.
引用
收藏
页码:2207 / 2225
页数:19
相关论文
共 165 条
[1]   Genome sequences of rare, uncultured bacteria obtained by differential coverage binning of multiple metagenomes [J].
Albertsen, Mads ;
Hugenholtz, Philip ;
Skarshewski, Adam ;
Nielsen, Kare L. ;
Tyson, Gene W. ;
Nielsen, Per H. .
NATURE BIOTECHNOLOGY, 2013, 31 (06) :533-+
[2]   Community analysis of the bacterial assemblages in the winter cover and pelagic layers of a high mountain lake by in situ hybridization [J].
Alfreider, A ;
Pernthaler, J ;
Amann, R ;
Sattler, B ;
Glockner, FO ;
Wille, A ;
Psenner, R .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 1996, 62 (06) :2138-2144
[3]   Carbon fluxes through bacterial communities on glacier surfaces [J].
Anesio, Alexandre M. ;
Sattler, Birgit ;
Foreman, Christine ;
Telling, Jon ;
Hodson, Andy ;
Tranter, Martyn ;
Psenner, Roland .
ANNALS OF GLACIOLOGY, 2010, 51 (56) :32-40
[4]   Abrupt environmental change in Canada's northernmost lake inferred from fossil diatom and pigment stratigraphy [J].
Antoniades, Dermot ;
Crawley, Catherine ;
Douglas, Marianne S. V. ;
Pienitz, Reinhard ;
Andersen, Dale ;
Doran, Peter T. ;
Hawes, Ian ;
Pollard, Wayne ;
Vincent, Warwick F. .
GEOPHYSICAL RESEARCH LETTERS, 2007, 34 (18)
[5]   Dynamic behaviour of supraglacial lakes on cold polar glaciers: Canada Glacier, McMurdo Dry Valleys, Antarctica [J].
Bagshaw, E. A. ;
Tranter, M. ;
Wadham, J. L. ;
Fountain, A. G. ;
Basagic, H. .
JOURNAL OF GLACIOLOGY, 2010, 56 (196) :366-368
[6]   Temporal patterns of primary production in a large ultra-oligotrophic Antarctic freshwater lake [J].
Bayliss, P ;
EllisEvans, JC ;
LaybournParry, J .
POLAR BIOLOGY, 1997, 18 (06) :363-370
[7]   Annual plankton dynamics in an Antarctic saline lake [J].
Bell, EM ;
Laybourn-Parry, J .
FRESHWATER BIOLOGY, 1999, 41 (03) :507-519
[8]   Algoriphagus ratkowskyi gen. nov., sp nov., Brumimicrobium glaciale gen. nov., sp nov., Cryomorpha ignava gen. nov., sp nov and Crocinitomix catalasitica gen. nov., sp nov., novel flavobacteria isolated from various polar habitats [J].
Bowman, JP ;
Mancuso, C ;
Nichols, CM ;
Gibson, JAE .
INTERNATIONAL JOURNAL OF SYSTEMATIC AND EVOLUTIONARY MICROBIOLOGY, 2003, 53 :1343-1355
[9]   Methylosphaera hansonii gen nov, sp nov, a psychrophilic, group I methanotroph from Antarctic marine-salinity, meromictic lakes [J].
Bowman, JP ;
McCammon, SA ;
Skerratt, JH .
MICROBIOLOGY-UK, 1997, 143 :1451-1459
[10]   Diversity and community structure within anoxic sediment from marine salinity meromictic lakes and a coastal meromictic marine basin, Vestfold Hills, Eastern Antarctica [J].
Bowman, JP ;
Rea, SM ;
McCammon, SA ;
McMeekin, TA .
ENVIRONMENTAL MICROBIOLOGY, 2000, 2 (02) :227-237