腐岩
营养物
基岩
风化作用
环境科学
横断面
土壤水分
农学
降水
环境化学
硅酸盐矿物
锶
分水岭
根际
土壤科学
化学
原性土壤
水文学(农业)
硅酸盐
硝酸盐
地质学
作者
Langlang Li,John N. Christensen,Markus Bill,Wenming Dong,Yuxin Wu,Curtis Beutler,Matthias Sprenger,Brian W. Gulick,Sharon E. Bone,Boris Faybishenko,John Sanders,Chunwei Chou,Amanda Henderson,Nicholas J. Bouskill,Kenneth H. Williams,Benjamin Gilbert
标识
DOI:10.1073/pnas.2528407123
摘要
The capacity of some plants to access water and nutrients at depths greater than one meter is a critical functional trait that confers resistance to drought and impacts both belowground and shallow soil processes. Here, we report water and strontium isotopic data from an alpine meadow transect showing the correlation between water and nutrient acquisition depths. The isotopic compositions of Sr (87Sr/86Sr ratio) and water in rock and soil, and in plant leaf tissues, reveal that deeper-rooted plants acquire a higher proportion of water, Sr, and cation nutrients that are derived from the saprolite, a zone of silicate weathering, than shallow-rooted grass. A three-decade dendrochemical record reveals that reductions of wet precipitation drive deep-rooted plants to acquire cation nutrients from deeper saprolite or bedrock regions. Thus, the depth of cation nutrient acquisition by deep-rooted plant species at this site is tightly coupled with, and likely determined by, water availability in soil, saprolite, and bedrock. The enhanced uptake of cations as well as water from deeper saprolite zones could impact the rate of bedrock weathering and watershed chemistry during drought.
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