Wen Shuhai, Delgado-Baquerizo Manuel, Sáez-Sandino Tadeo, Chen Jiaying, Feng Jiao, Huang Qiaoyun, Guirado Emilio, Rillig Matthias C, Liu Yu-Rong
National Key Laboratory of Agricultural Microbiology, Huazhong Agricultural University, Wuhan, China.
College of Resources and Environment, Huazhong Agricultural University, Wuhan, China.
Ecol Lett. 2025 Jun;28(6):e70143. doi: 10.1111/ele.70143.
Surface soils are highly vulnerable to multiple global change stressors associated with climate change and human activity; however, whether the impacts of this increasing number of stressors penetrate deeper soils remains virtually unknown. Here, we conducted a continental-scale survey of soil profiles (0-100 cm). Results showed that multiple stressors jointly affect multiple soil functions (from soil carbon sequestration to pathogen control) across top (0-30 cm), subsurface (30-60 cm) and deep soils (60-100 cm). An increasing number of stressors was especially detrimental to the capacity of ecosystems to support productivity and regulate soil-borne pathogens across all depths. Further analyses revealed that climatic stressors interact with multiple environmental stressors, diminishing multifunctionality across the soil profile. Our work demonstrates that the effects of multiple stressors can permeate the entire soil profile, highlighting that an increasing number of global change stressors at low levels significantly threaten multiple functions supported by deep soils.
表层土壤极易受到与气候变化和人类活动相关的多种全球变化压力因素的影响;然而,这些越来越多的压力因素对更深层土壤的影响实际上仍不为人知。在此,我们对土壤剖面(0 - 100厘米)进行了一次大陆尺度的调查。结果表明,多种压力因素共同影响着表层(0 - 30厘米)、次表层(30 - 60厘米)和深层土壤(60 - 100厘米)的多种土壤功能(从土壤碳固存到病原体控制)。压力因素数量的增加尤其不利于生态系统在所有深度支持生产力和调节土壤传播病原体的能力。进一步分析表明,气候压力因素与多种环境压力因素相互作用,降低了整个土壤剖面的多功能性。我们的研究表明,多种压力因素的影响能够渗透到整个土壤剖面,突出了低水平下越来越多的全球变化压力因素对深层土壤所支持的多种功能构成重大威胁。