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April 3, 2026Proceedings of the Royal Society B Biological Sciences1 citationsOpen Access

Water availability regulates abrupt shifts in global terrestrial vegetation productivity by reducing resilience

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MWMaohong WeiXLXueqiang LuHLH. N. Li

Key Points

  • The study aims to understand how water availability influences abrupt shifts in vegetation productivity and ecosystem resilience globally.
  • Analyzed long-term satellite datasets to identify shifts in vegetation productivity
  • Assessed early warning signals via ecosystem resilience evaluation
  • Examined drivers of resilience decline across land-cover, climate, and human activity dimensions
  • Negative shifts in vegetation productivity were primarily observed in high northern latitudes and equatorial regions
  • Both negative and positive abrupt shifts have increased since 2002
  • A significant decline in ecosystem resilience occurred 4 years before detected shifts
  • Water availability was identified as the primary factor contributing to reduced ecosystem resilience

Abstract

Abrupt shifts in vegetation productivity induced by environmental change profoundly affect ecosystem functions and services, such as carbon sequestration, biodiversity maintenance and climate regulation, yet their long-term global patterns and underlying drivers remain insufficiently understood. In this study, abrupt shifts in vegetation productivity were identified using two independent long-term satellite datasets, and early warning signals were assessed through ecosystem resilience. The main drivers of resilience decline were further examined across land-cover, climate and human-activity dimensions. The results showed that negative abrupt shifts were predominantly concentrated in high northern latitudes and equatorial regions, and that both negative and positive abrupt shifts displayed distinct increasing trends after 2002. A sharp decline in ecosystem resilience was also detected during the 4 years preceding abrupt shifts. Changes in water availability were identified as the primary factor contributing to the reduced resilience of global ecosystems, as evidenced by the driver trajectory, generalized additive models and convergent cross-mapping methods. This study provides insight into the pervasive occurrence of abrupt shifts in vegetation productivity and the discernible impact of climate change. When projecting vegetation dynamics under future climate change, it is essential to consider the significant uncertainties associated with abrupt shifts.

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Cite This Study

Wei et al. (2026) studied this question.

synapsesocial.com/papers/69cf5dc55a333a821460bc62https://doi.org/10.1098/rspb.2025.3118
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