元社区
异步(计算机编程)
生态学
生态系统
可预测性
空间生态学
生态稳定性
航程(航空)
时间尺度
地理
环境科学
环境资源管理
生物
生物扩散
异步通信
计算机科学
人口
人口学
材料科学
复合材料
社会学
物理
量子力学
计算机网络
作者
Kevin R. Wilcox,Andrew T. Tredennick,Sally E. Koerner,Emily Grman,Lauren M. Hallett,Meghan L. Avolio,Kimberly J. La Pierre,Gregory R. Houseman,Forest Isbell,David Samuel Johnson,Juha M. Alatalo,Andrew H. Baldwin,Edward W. Bork,Elizabeth H. Boughton,William D. Bowman,Andrea J. Britton,James F. Cahill,Scott L. Collins,Guozhen Du,Anu Eskelinen
摘要
Temporal stability of ecosystem functioning increases the predictability and reliability of ecosystem services, and understanding the drivers of stability across spatial scales is important for land management and policy decisions. We used species-level abundance data from 62 plant communities across five continents to assess mechanisms of temporal stability across spatial scales. We assessed how asynchrony (i.e. different units responding dissimilarly through time) of species and local communities stabilised metacommunity ecosystem function. Asynchrony of species increased stability of local communities, and asynchrony among local communities enhanced metacommunity stability by a wide range of magnitudes (1-315%); this range was positively correlated with the size of the metacommunity. Additionally, asynchronous responses among local communities were linked with species' populations fluctuating asynchronously across space, perhaps stemming from physical and/or competitive differences among local communities. Accordingly, we suggest spatial heterogeneity should be a major focus for maintaining the stability of ecosystem services at larger spatial scales.
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