GSTDTAP  > 气候变化
DOI10.1111/gcb.14084
Long-term deepened snow promotes tundra evergreen shrub growth and summertime ecosystem net CO2 gain but reduces soil carbon and nutrient pools
Christiansen, Casper T.1,2; Lafreniere, Melissa J.3; Henry, Gregory H. R.4; Grogan, Paul1
2018-08-01
发表期刊GLOBAL CHANGE BIOLOGY
ISSN1354-1013
EISSN1365-2486
出版年2018
卷号24期号:8页码:3508-3525
文章类型Article
语种英语
国家Canada; Norway
英文摘要

Arctic climate warming will be primarily during winter, resulting in increased snowfall in many regions. Previous tundra research on the impacts of deepened snow has generally been of short duration. Here, we report relatively long-term (7-9 years) effects of experimentally deepened snow on plant community structure, net ecosystem CO2 exchange (NEE), and soil biogeochemistry in Canadian Low Arctic mesic shrub tundra. The snowfence treatment enhanced snow depth from 0.3 to similar to 1 m, increasing winter soil temperatures by similar to 3 degrees C, but with no effect on summer soil temperature, moisture, or thaw depth. Nevertheless, shoot biomass of the evergreen shrub Rhododendron subarcticum was near-doubled by the snowfences, leading to a 52% increase in aboveground vascular plant biomass. Additionally, summertime NEE rates, measured in collars containing similar plant biomass across treatments, were consistently reduced similar to 30% in the snowfenced plots due to decreased ecosystem respiration rather than increased gross photosynthesis. Phosphate in the organic soil layer (0-10 cm depth) and nitrate in the mineral soil layer (15-25 cm depth) were substantially reduced within the snowfences (47-70 and 43%-73% reductions, respectively, across sampling times). Finally, the snowfences tended (p = .08) to reduce mineral soil layer C% by 40%, but with considerable within- and among plot variation due to cryoturbation across the landscape. These results indicate that enhanced snow accumulation is likely to further increase dominance of R.subarcticum in its favored locations, and reduce summertime respiration and soil biogeochemical pools. Since evergreens are relatively slow growing and of low stature, their increased dominance may constrain vegetation-related feedbacks to climate change. We found no evidence that deepened snow promoted deciduous shrub growth in mesic tundra, and conclude that the relatively strong R.subarcticum response to snow accumulation may explain the extensive spatial variability in observed circumpolar patterns of evergreen and deciduous shrub growth over the past 30 years.


英文关键词Arctic carbon cycling climate change deciduous shrub snowfence soil microbes vegetation changes winter
领域气候变化 ; 资源环境
收录类别SCI-E
WOS记录号WOS:000437284700021
WOS关键词UNFROZEN WATER-CONTENT ; ARCTIC TUNDRA ; ORGANIC-MATTER ; NITROGEN MINERALIZATION ; MICROBIAL BIOMASS ; PERMAFROST CARBON ; CLIMATE-CHANGE ; TEMPERATURE SENSITIVITY ; SEASON RESPIRATION ; PLANT-GROWTH
WOS类目Biodiversity Conservation ; Ecology ; Environmental Sciences
WOS研究方向Biodiversity & Conservation ; Environmental Sciences & Ecology
引用统计
文献类型期刊论文
条目标识符http://119.78.100.173/C666/handle/2XK7JSWQ/17719
专题气候变化
资源环境科学
作者单位1.Queens Univ, Dept Biol, Kingston, ON, Canada;
2.Bjerknes Ctr Climate Res, Uni Res Climate, Bergen, Norway;
3.Queens Univ, Dept Geog, Kingston, ON, Canada;
4.Univ British Columbia, Dept Geog, Vancouver, BC, Canada
推荐引用方式
GB/T 7714
Christiansen, Casper T.,Lafreniere, Melissa J.,Henry, Gregory H. R.,et al. Long-term deepened snow promotes tundra evergreen shrub growth and summertime ecosystem net CO2 gain but reduces soil carbon and nutrient pools[J]. GLOBAL CHANGE BIOLOGY,2018,24(8):3508-3525.
APA Christiansen, Casper T.,Lafreniere, Melissa J.,Henry, Gregory H. R.,&Grogan, Paul.(2018).Long-term deepened snow promotes tundra evergreen shrub growth and summertime ecosystem net CO2 gain but reduces soil carbon and nutrient pools.GLOBAL CHANGE BIOLOGY,24(8),3508-3525.
MLA Christiansen, Casper T.,et al."Long-term deepened snow promotes tundra evergreen shrub growth and summertime ecosystem net CO2 gain but reduces soil carbon and nutrient pools".GLOBAL CHANGE BIOLOGY 24.8(2018):3508-3525.
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