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Ecological restorations enhance ecosystem stability by improving ecological resilience in a typical basin of the Yangtze River, China

长江 中国 弹性(材料科学) 生态系统 生态学 生态恢复力 构造盆地 生态稳定性 环境科学 地理 心理弹性 环境资源管理 地质学 生物 地貌学 热力学 物理 考古 心理治疗师 心理学
作者
Yixiao Li,Zhengyuan Zhao,Bojie Fu,Yunlong Zhang,Yihe Lü,Ting Li,Shiliang Liu,Gang Wu,Xi Zheng,Xing Wu
出处
期刊:Geography and sustainability [Elsevier BV]
卷期号:6 (6): 100357-100357
标识
DOI:10.1016/j.geosus.2025.100357
摘要

• Temporal stability of ESs, ecological resistance and resilience were integrated to assess ecosystem stability. • The pathways and extent of key factors driving ecosystem stability were identified by PLS-SEM. • Forests exhibited the highest ecosystem stability due to enhanced temporal stability of ESs and ecological resilience. • Ecological resistance and resilience showed contrasting spatial distributions. • Ecological restoration enhanced ecosystem stability mainly by improving ecological resilience. Ecological restorations (ERs) have been widely implemented in recent decades to enhance ecosystem stability. However, the extent of their impacts on ecosystem stability and the underlying mechanism remain poorly understood. This study developed a comprehensive framework for ecosystem stability assessment by integrating the temporal stability of ecosystem service (ES) provision, ecological resistance, and ecological resilience. Additionally, ER intensity was quantified using vegetation index trends, while the pathways and magnitudes of key factors driving ecosystem stability were identified by partial least squares structural equation modeling. Using the Jialing River Basin as a case study, our results revealed that forests exhibited the highest ecosystem stability due to their enhanced capacity to maintain temporal stability of ES provision and ecological resilience. However, farmlands demonstrated the strongest ecological resistance, followed by forests and grasslands. ER projects were primarily implemented in northern and southern farmland regions characterized by low ecological resilience. Pathway analysis identified that favorable climates significantly enhanced the temporal stability of ES provision, and rugged topography improved the ecological resistance. However, fragmented landscape patches disrupted stable ES provision by reducing ecological connectivity, and socioeconomic development diminished both resistance and resilience through land-use intensification. Notably, ERs improved ecological resilience, which in turn elevated overall ecosystem stability. Our results indicated that the proposed framework provides a systematic approach for comprehensive ecosystem stability evaluation and offers critical insights for developing region-specific ER strategies.
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