4.6 Article

Microbial eukaryote communities exhibit robust biogeographical patterns along a gradient of Patagonian and Antarctic lakes

期刊

ENVIRONMENTAL MICROBIOLOGY
卷 18, 期 12, 页码 5249-5264

出版社

WILEY
DOI: 10.1111/1462-2920.13566

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资金

  1. Argentinean Funds for Technical and Scientific Investigation (FONCYT) [PICT 32732, PICT 2013-0794]
  2. Spanish Project MIX-ANTAR [REN 2002-11396-E/ANT]
  3. Swiss NSF [310003A_143960]
  4. Program 'Luis Santalo' of the National Research Council of Spain
  5. National Council of Scientific and Technical Research of Argentina (CSIC-CONICET) [PROBA 2007AR0018]
  6. CONICYT [21110037, 78130011]
  7. Wildlife Conservation Society (Karukinka grant) [2012]

向作者/读者索取更多资源

Microbial eukaryotes play important roles in aquatic ecosystem functioning. Unravelling their distribution patterns and biogeography provides important baseline information to infer the underlying mechanisms that regulate the biodiversity and complexity of ecosystems. We studied the distribution patterns and factors driving diversity gradients in microeukaryote communities (total, abundant, uncommon and rare community composition) along a latitudinal gradient of lakes distributed from Argentinean Patagonia to Maritime Antarctica using both denaturing gradient gel electrophoresis (DGGE) and high-throughput sequencing (Illumina HiSeq). DGGE and abundant Illumina operational taxonomic units (OTUs) showed both decreasing richness with latitude and significant differences between Patagonian and Antarctic lakes communities. In contrast, total richness did not change significantly across the latitudinal gradient, although evenness and diversity indices were significantly higher in Patagonian lakes. Beta-diversity was characterized by a high species turnover, influenced by both environmental and geographical descriptors, although this pattern faded in the rare community. Our results suggest the co-existence of a 'core biosphere' containing reduced number of abundant/dominant OTUs on which classical ecological rules apply, together with a much larger seedbank of rare OTUs driven by stochastic and reduced dispersal processes. These findings shed new light on the biogeographical patterns and forces structuring inland microeukaryote composition across broad spatial scales.

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