Disentangling drivers of soil microbial nutrient limitation in intensive agricultural and natural ecosystems

土壤水分 矿化(土壤科学) 土壤pH值 营养物 环境化学 化学 农学 土壤碳 土壤酸化 生态学 生物 有机化学
作者
Jie Yi,Quanchao Zeng,Tangyingze Mei,Shengnan Zhang,Qi Li,Mingxia Wang,Wenfeng Tan
出处
期刊:Science of The Total Environment [Elsevier BV]
卷期号:806 (Pt 1): 150555-150555 被引量:45
标识
DOI:10.1016/j.scitotenv.2021.150555
摘要

Characterized by continuous chemical fertilization, intensive agriculture generally reduces soil ecoenzymatic activities and nutrient mineralization, as well as alters the biomass production and microbial community composition. Soil acidification poses serious threats to the sustainable development of intensive agriculture. However, the mechanism of nutrient cycling and metabolism of soil microorganisms in response to soil acidification in intensive agriculture remains unclear. Herein, we studied the variations in ecoenzymatic stoichiometry of soil β-glucosidase (BG), cellobiohydrolase (CBH), N -acetylglucosaminidase (NAG) and acid phosphatase (AP) under different land use types and pH gradients of tea garden soils. The results revealed that natural forest and cropland soils had significantly higher BG and CBH activities than tea garden soils. Soil BG and CBH activities displayed significant positive correlations with soil pH, total nitrogen (TN) and phosphorus (TP), while soil NAG activity was significantly associated with nitrate nitrogen, total carbon (TC), TN, carbon: phosphorus (C:P) and nitrogen: phosphorus (N:P) ratios. Soil AP activity showed significant negative associations with pH, TP and C:N ratio, but was significantly positively correlated with TC, TN, C:P and N:P ratios. Enzyme vector model revealed that soil microorganisms are limited by P (enzyme vector angle >45°) regardless of land use types. Compared to natural forest soils, the P limitation of microorganisms in tea garden soils became increasingly serious with a decreasing pH gradient, as indicated by the significant increase in enzyme vector angle. Thus, the overall ecoenzymatic stoichiometry was shifted by soil pH. In summary, higher pH increased BG activity and decreased AP activity, but had no significant effect on NAG activity, suggesting co-limitation of soil microorganisms by C and P in this area. This study provides novel insights into the effect of soil acidification on ecoenzymatic stoichiometry, and also highlights the stoichiometric and energy limitations on the metabolism of soil microorganisms in agricultural ecosystems. • Tea garden soils accumulated high P availability (39 mg/kg). • Soil C-acquiring enzyme increases with increasing soil pH. • High P availability favors acid phosphatase activity. • Soil N-acquiring enzyme shows no significant associations with soil pH. • Soil pH controls extracellular enzyme activity and ecoenzymatic stoichiometry in tea garden soils.
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