播种
重金属
夹
环境科学
农林复合经营
生物
植物
环境化学
化学
材料科学
复合材料
作者
Jiale Wang,Qi Yan,Haiyi Mi,Hua Luo,Xinke Zhang,Bashir Ahmad,Baozhong Duan,Jun Zhu,Lin Huang
标识
DOI:10.1016/j.ecolind.2025.113726
摘要
• First Nationwide Spatiotemporal Analysis: First analysis of HMs (Pb, Cd, Hg, As, Cu) in CHM planting soils (2007–2024) reveals northwestward pollution migration. • Regional Pollution and Risks Assessment: Higher pollution in southeast vs. northwest of HTL; Cd and Hg pose higher risks. • Climate Change Impact: Suitable habitats for Dioscorea opposita Thun. shift northwestward, overlapping Cd-polluted areas by 2081–2100 (SSP245 scenario). • New Management Framework: Combines the spatiotemporal variation of soil HMs and MaxEnt modeling to guide sustainable CHM cultivation. Soil heavy metal (HM) pollution and climate change collectively impair the cultivation viability of Chinese herbal medicines (CHM). However, the spatiotemporal pattern of soil HMs in CHM planting (CHMP) region remains uncertain. Here, we extracted concentrations of five HMs (Pb, Cd, Hg, As, and Cu) in CHMP soils, and assessed the national pattern of spatiotemporal distribution of CHMP soils HMs between 2007 and 2024 using the standard deviation ellipse method. The spatial analysis revealed a trend of the gravity center of HMs pollution migrating inland towards the northwest. Furthermore, Cd and Hg exhibit higher ecological risks. The spatial migration of pollution centers differs by metal. The temporal dynamics of five HMs in CHMP regions showed heterogeneity on either side of the HTL. Notably, Cd pollution exhibited a steadily increasing trend during three time periods in the northwest region of the HTL. Moreover, we take Dioscorea opposita Thunb. as an example to evaluate the risks associated with migration under future climate scenarios. The findings showed that climate change is expected to drive the suitable habitats of D. opposita northwestward. Under the SSP245 scenario, the CoM of suitable habitats intersects with the Cd-polluted areas during 2081–2100, posing significant challenges to sustainable cultivation. Given these results, taking a prevention strategy to replan D. opposita planting is necessary. Our study innovatively combines the spatiotemporal variation of soil HMs and MaxEnt modeling to provide a methodological framework that can be utilized by future research endeavors examining the replanment and management of medicinal plants.
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