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干旱区科学  2020, Vol. 12 Issue (5): 775-790    DOI: 10.1007/s40333-020-0059-9
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Impacts of snow on seed germination are independent of seed traits and plant ecological characteristics in a temperate desert of Central Asia
Anlifeire ANNIWAER1,2, SU Yangui1, ZHOU Xiaobing1, ZHANG Yuanming1,*()
1State Kay Laboratory of Desert and Oasis Ecology, Xinjiang Institute of Ecology and Geography, Chinese Academy of Sciences, Urumqi 830011, China
2University of Chinese Academy of Sciences, Beijing 100049, China
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Abstract: 

Seed germination profoundly impacts plant community composition within the plant life cycle. Snow is an important source of water for seed germination in the temperate deserts of Central Asia. Understanding how seed germination responds to variations in snow cover in relation to seed traits and plant ecological characteristics can help predict plant community sustainability and stability in Central Asia under a scenario climate change. This study investigated the seed germination of 35 plant species common to the Gurbantunggut Desert in Central Asia under the three snow treatments: (1) snow addition; (2) ambient snow; and (3) snow removal. Two-way analysis of variance (ANOVA) tests were performed to assess interactions among the impacts of snow treatments, seed traits and plant ecological characteristics on seed germination. Phylogenetic generalized least-squares (PGLS) model was used to test the relationships between seed traits and seed germination. The results demonstrated that snow variations had no significant impacts on seed germination overall. Seed germination under the snow addition treatment was similar with that under the ambient snow treatment, irrespective of seed traits and plant ecological characteristics. Snow removal only had negative impacts on seed germination for certain groups of seed traits and plant ecological characteristics. Seed mass positively affected seed germination, showing a linear increase of arcsin square root-transformed seed germination with log-transformed seed mass. Seed shape also profoundly impacted seed germination, with a higher germination percentage for elongated and flat seeds. Seed germination differed under different plant life forms, with semi-shrub species showing a significantly higher germination percentage. Most importantly, although snow treatments, seed traits and plant ecological characteristics had no interactive effects on seed germination overall, some negative impacts from the snow removal treatment were detected when seeds were categorized on the basis of seed mass and shape. This result suggests that variations of snow cover may change plant community composition in this temperate desert due to their impacts on seed germination.

Key words:  snow cover    seed germination    seed traits    plant life form    Gurbantunggut Desert
收稿日期:  2019-08-22      修回日期:  2019-12-12      接受日期:  2020-05-11      出版日期:  2020-09-10      发布日期:  2020-09-10      期的出版日期:  2020-09-10
引用本文:    
. [J]. 干旱区科学, 2020, 12(5): 775-790.
Anlifeire ANNIWAER, SU Yangui, ZHOU Xiaobing, ZHANG Yuanming. Impacts of snow on seed germination are independent of seed traits and plant ecological characteristics in a temperate desert of Central Asia. Journal of Arid Land, 2020, 12(5): 775-790.
链接本文:  
http://jal.xjegi.com/CN/10.1007/s40333-020-0059-9  或          http://jal.xjegi.com/CN/Y2020/V12/I5/775
  
  
Source of variation df GP-1 GP-2
F P F P
Snow 2 1.346 0.265 1.892 0.156
Snow×seed mass 10 0.157 0.998 0.392 0.947
Snow×seed shape 6 0.848 0.536 0.353 0.907
Snow×seed color 8 0.047 1.000 0.261 0.977
Snow×plant life form 6 0.291 0.967 0.111 0.999
Snow×plant ecotype 2 0.078 0.925 0.083 0.921
  
  
  
  
  
  
  
  
Response Y X Slope SD t P r λ
GP-1 Snow addition Seed mass (log10) 3.365 2.088 1.611 0.117 0.313 0.722
Ambient snow Seed mass (log10) 1.896 1.828 1.037 0.308 0.169 0.728
Snow removal Seed mass (log10) 1.544 1.313 1.175 0.248 0.201 0.940
GP-2 Snow addition Seed mass (log10) 2.960 66.212 0.044 0.964 -0.075 0.000
Ambient snow Seed mass (log10) 1.896 1.828 1.037 0.308 0.054 0.728
Snow removal Seed mass (log10) -4.683 3.800 -1.232 0.227 -0.253 0.000
GP-1 Snow addition Seed shape variance 15.863 34.576 0.458 0.649 0.063 0.612
Ambient snow Seed shape variance 17.239 29.495 0.584 0.563 0.071 0.709
Snow removal Seed shape variance 24.552 21.199 1.158 0.255 0.198 1.000
GP-2 Snow addition Seed shape variance 2.960 66.212 0.044 0.964 -0.048 0.000
Ambient snow Seed shape variance -4.870 60.795 -0.080 0.936 -0.030 0.000
Snow removal Seed shape variance -4.569 58.389 -0.078 0.938 0.152 0.000
  
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