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跨生态系统综合分析树木生长的源与库限制。

Cross-biome synthesis of source versus sink limits to tree growth.

机构信息

School of Biological Sciences, University of Utah, Salt Lake City, UT, USA.

McMaster Centre for Climate Change, McMaster University, Hamilton, Ontario L8S 4K1, Canada.

出版信息

Science. 2022 May 13;376(6594):758-761. doi: 10.1126/science.abm4875. Epub 2022 May 12.

Abstract

Uncertainties surrounding tree carbon allocation to growth are a major limitation to projections of forest carbon sequestration and response to climate change. The prevalence and extent to which carbon assimilation (source) or cambial activity (sink) mediate wood production are fundamentally important and remain elusive. We quantified source-sink relations across biomes by combining eddy-covariance gross primary production with extensive on-site and regional tree ring observations. We found widespread temporal decoupling between carbon assimilation and tree growth, underpinned by contrasting climatic sensitivities of these two processes. Substantial differences in assimilation-growth decoupling between angiosperms and gymnosperms were determined, as well as stronger decoupling with canopy closure, aridity, and decreasing temperatures. Our results reveal pervasive sink control over tree growth that is likely to be increasingly prominent under global climate change.

摘要

树木碳分配到生长的不确定性是对森林碳固存和对气候变化响应进行预测的主要限制因素。碳同化(源)或形成层活动(汇)在多大程度上调节木材生产是至关重要的,但目前仍不清楚。我们通过将涡度协方差总初级生产力与广泛的现场和区域树木年轮观测相结合,来量化生物群落中的源-汇关系。我们发现,碳同化和树木生长之间存在广泛的时间解耦,这是由这两个过程对气候的敏感性不同所支撑的。我们确定了被子植物和裸子植物之间同化-生长解耦的显著差异,以及与冠层闭合、干旱和温度降低更强的解耦。我们的研究结果揭示了普遍存在的汇对树木生长的控制,这种控制在全球气候变化下可能会变得更加突出。

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