Depth distribution of organic carbon sources in Arctic Chukchi Sea sediments

被引:2
作者
Zinkann, Ann-Christine [1 ]
Wooller, Matthew J. [1 ,2 ]
Leigh, Mary Beth [3 ]
Danielson, Seth [1 ]
Gibson, Georgina [4 ]
Iken, Katrin [1 ]
机构
[1] Univ Alaska Fairbanks, Coll Fisheries & Ocean Sci, 2150 Koyukuk Dr,245 ONeill Bldg, Fairbanks, AK 99775 USA
[2] Univ Alaska Fairbanks, Water & Environm Res Ctr, Inst Northern Engn, Alaska Stable Isotope Facil, 1764 Tanana Loop, Fairbanks, AK 99775 USA
[3] Univ Alaska Fairbanks, Inst Arctic Biol, 2140 Koyukuk Dr, Fairbanks, AK 99775 USA
[4] Univ Alaska Fairbanks, Int Arctic Res Ctr, 2160 Koyukuk Dr, Fairbanks, AK 99775 USA
基金
美国海洋和大气管理局;
关键词
Stable isotope fingerprinting; Phospholipid fatty acids; Terrestrial organic matter; Bacterial production; FOOD-WEB STRUCTURE; SULFATE-REDUCING BACTERIA; STABLE-ISOTOPE; BERING-SEA; MICROBIAL COMMUNITIES; MARINE-SEDIMENTS; FATTY-ACID; CONTINENTAL-SHELF; BIOGEOCHEMICAL PROCESSES; ICE ALGAE;
D O I
10.1016/j.dsr2.2022.105076
中图分类号
P7 [海洋学];
学科分类号
0707 ;
摘要
Climate-induced changes in the composition of organic matter sources in Chukchi Sea sediments could have major implications on carbon cycling, carbon sequestration, and food sources for lower benthic trophic levels. The aim of this study was two-fold: (1) to identify the proportional contributions of organic matter from various primary producers (phytoplankton, terrestrial, and bacterial) to depth-stratified sediments (0-5 cm) across the Arctic Chukchi Sea shelf using essential amino acid (EAA) specific stable carbon isotope biomarkers; and (2) to experimentally evaluate sediment bacterial production under different temperature scenarios. Proportional contributions of EAA sources to surface sediments had little relationship with environmental variables across the Chukchi Shelf and only showed noticeably higher terrestrial proportions in surface sediments in a high-deposition region in the southern study area. Across all sediment depth strata, the majority of EAA in sediments (similar to 76%) originated from terrestrial sources and may be indicative of accumulation over time due to slow degradation processes of this source within sediments. The different EAA sources showed no significant differences in proportional contributions with sediment depth except for phytoplankton-derived EAA, which decreased with increasing sediment depth. These patterns indicate a well-mixed upper sediment horizon, possibly from bioturbation activities by the abundant benthos. One EAA source assumed to respond quickly to changing environmental conditions are bacteria. To evaluate if and how bacterial production would respond to elevated temperatures, sediment bacterial production was measured experimentally using phospholipid fatty acid (PLFA) analysis. Bacterial production was initially (first 24 h) higher at 5 degrees C than at 0 degrees C; however, a drawdown of substrate or potential increase in predation activity and viral lysis resulted in bacterial production to subsequently be similar at both temperature settings. Overall results of this study suggest that terrestrial and bacterial carbon sources may become more prominent in a future, warmer Arctic. Identifying current patterns and potential shifts in organic matter sources with changes in temperature can aid in the understanding of the consequences of climate change in terms of organic matter presence and flow through benthic consumers that use these shelf sediments as feeding grounds.
引用
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页数:16
相关论文
共 154 条
[1]   THE ROLE OF SEA ICE AND OTHER FRESH-WATER IN THE ARCTIC CIRCULATION [J].
AAGAARD, K ;
CARMACK, EC .
JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 1989, 94 (C10) :14485-14498
[2]   Loss of estuarine bacteria by viral infection and predation in microcosm conditions [J].
Almeida, MA ;
Cunha, MA ;
Alcântara, F .
MICROBIAL ECOLOGY, 2001, 42 (04) :562-571
[3]  
[Anonymous], 2004, The Organic Carbon Cycle in the Arctic Ocean, DOI DOI 10.1007/978-3-642-18912-87
[4]   Consumption of terrestrial organic matter by estuarine molluscs determined by analysis of their stable isotopes and cellulase activity [J].
Antonio, Emily S. ;
Kasai, Akihide ;
Ueno, Masahiro ;
Kurikawa, Yoshiro ;
Tsuchiya, Kanako ;
Toyohara, Haruhiko ;
Ishihi, Yuka ;
Yokoyama, Hisashi ;
Yamashita, Yoh .
ESTUARINE COASTAL AND SHELF SCIENCE, 2010, 86 (03) :401-407
[5]   Phytoplankton dynamics in a changing Arctic Ocean [J].
Ardyna, Mathieu ;
Arrigo, Kevin Robert .
NATURE CLIMATE CHANGE, 2020, 10 (10) :892-903
[6]   Quantifying the degradation of organic matter in marine sediments: A review and synthesis [J].
Arndt, Sandra ;
Jorgensen, B. B. ;
LaRowe, D. E. ;
Middelburg, J. J. ;
Pancost, R. D. ;
Regnier, P. .
EARTH-SCIENCE REVIEWS, 2013, 123 :53-86
[7]   High activity and low temperature optima of extracellular enzymes in Arctic sediments: implications for carbon cycling by heterotrophic microbial communities [J].
Arnosti, C ;
Jorgensen, BB .
MARINE ECOLOGY PROGRESS SERIES, 2003, 249 :15-24
[8]   Temperature dependence of microbial degradation of organic matter in marine sediments: polysaccharide hydrolysis, oxygen consumption, and sulfate reduction [J].
Arnosti, C ;
Jorgensen, BB ;
Sagemann, J ;
Thamdrup, B .
MARINE ECOLOGY PROGRESS SERIES, 1998, 165 :59-70
[9]   Impact of a shrinking Arctic ice cover on marine primary production [J].
Arrigo, Kevin R. ;
van Dijken, Gert ;
Pabi, Sudeshna .
GEOPHYSICAL RESEARCH LETTERS, 2008, 35 (19)
[10]   Comparison of soil fungal/bacterial ratios in a pH gradient using physiological and PLFA-based techniques [J].
Bååth, E ;
Anderson, TH .
SOIL BIOLOGY & BIOCHEMISTRY, 2003, 35 (07) :955-963