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DOI: 10.1371/journal.pone.0171391
论文题名:
A substantial fraction of phytoplankton-derived DON is resistant to degradation by a metabolically versatile, widely distributed marine bacterium
作者: Luca Polimene; Darren Clark; Susan Kimmance; Paul McCormack
刊名: PLOS ONE
ISSN: 1932-6203
出版年: 2017
发表日期: 2017-2-3
卷: 12, 期:2
语种: 英语
英文关键词: Marine bacteria ; Phytoplankton ; Particulates ; Marine environments ; Diatoms ; Lysis (medicine) ; Simulation and modeling ; Stoichiometry
英文摘要: The capacity of bacteria for degrading dissolved organic nitrogen (DON) and remineralising ammonium is of importance for marine ecosystems, as nitrogen availability frequently limits productivity. Here, we assess the capacity of a widely distributed and metabolically versatile marine bacterium to degrade phytoplankton-derived dissolved organic carbon (DOC) and nitrogen. To achieve this, we lysed exponentially growing diatoms and used the derived dissolved organic matter (DOM) to support an axenic culture of Alteromonas sp.. Bacterial biomass (as particulate carbon and nitrogen) was monitored for 70 days while growth dynamics (cell count), DOM (DOC, DON) and dissolved nutrient concentrations were monitored for up to 208 days. Bacterial biomass increased rapidly within the first 7 days prior to a period of growth/death cycles potentially linked to rapid nutrient recycling. We found that ≈75% of the initial DOC and ≈35% of the initial DON were consumed by bacteria within 40 and 4 days respectively, leaving a significant fraction of DOM resilient to degradation by this bacterial species. The different rates and extents to which DOC and DON were accessed resulted in changes in DOM stoichiometry and the iterative relationship between DOM quality and bacterial growth over time influenced bacterial cell C:N molar ratio. C:N values increased to 10 during the growth phase before decreasing to values of ≈5, indicating a change from relative N-limitation/C-sufficiency to relative C-limitation/N-sufficiency. Consequently, despite its reported metabolic versatility, we demonstrate that Alteromonas sp. was unable to access all phytoplankton derived DOM and that a bacterial community is likely to be required. By making the relatively simple assumption that an experimentally derived fraction of DOM remains resilient to bacterial degradation, these experimental results were corroborated by numerical simulations using a previously published model describing the interaction between DOM and bacteria in marine systems, thus supporting our hypothesis.
URL: http://journals.plos.org/plosone/article/file?id=10.1371/journal.pone.0171391&type=printable
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资源类型: 期刊论文
标识符: http://119.78.100.158/handle/2HF3EXSE/25926
Appears in Collections:过去全球变化的重建
影响、适应和脆弱性
科学计划与规划
气候变化与战略
全球变化的国际研究计划
气候减缓与适应
气候变化事实与影响

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作者单位: Plymouth Marine Laboratory, Prospect Place, The Hoe, Plymouth, United Kingdom;Plymouth Marine Laboratory, Prospect Place, The Hoe, Plymouth, United Kingdom;Plymouth Marine Laboratory, Prospect Place, The Hoe, Plymouth, United Kingdom;Petroleum and Environmental Geochemistry Group, Biogeochemistry Research Centre, University of Plymouth, Drake Circus, Plymouth, United Kingdom

Recommended Citation:
Luca Polimene,Darren Clark,Susan Kimmance,et al. A substantial fraction of phytoplankton-derived DON is resistant to degradation by a metabolically versatile, widely distributed marine bacterium[J]. PLOS ONE,2017-01-01,12(2)
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