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March 18, 2026Journal of Plant Ecology0 citationsOpen Access

Climatic drivers and internal connection among phenological events co-determine forest vegetative and reproductive phenology

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HTHui TangJWJia‐Yi WangBLBuhang Li

Key Points

  • This research aims to clarify how climatic factors and internal phenological connections shape plant life-history events in subtropical forests.
  • Analyzed six years of monthly litterfall data from a subtropical evergreen broad-leaved forest.
  • Used cross-correlation analyses to assess relationships among phenological events.
  • Employed generalized additive models (GAMs) to evaluate climatic influences on phenology.
  • Identified temperature and wind speed as key drivers for leaf fall, while day length regulated flowering.
  • Found that internal linkages, such as flowering influencing leaf abscission, were as significant as climatic factors.
  • Discovered trade-offs where high current seed output suppressed flowering in the next year, indicating resource allocation constraints.

Abstract

Abstract Plant phenology plays a fundamental role in ecosystem functioning by regulating species interactions and biogeochemical cycles. While both climatic factors and internal phenological linkages influence plant life-history events, their relative contributions remain unclear, particularly in species-rich subtropical forests. Using six years of monthly litterfall data (leaves, flowers, and fruits/seeds) from a subtropical evergreen broad-leaved forest, we combined cross-correlation analyses with generalized additive models (GAMs) into a unified framework to disentangle internal linkages among multiple phenological events and nonlinear climatic effects. We reveal three key findings. First, we identified distinct climatic drivers for each phenophase: temperature and wind speed primarily controlled leaf fall, day length regulated flowering, and the El Niño–Southern Oscillation (ENSO) strongly influenced seed production. Second, internal phenological linkages exerted equally strong or stronger effects than climate, with flower production driving leaf abscission, photoperiod triggering flowering, and both floral initiation and resource remobilization released from leaf abscission jointly determining seed production. Most notably, we discovered cross-year reproductive trade-offs mediated by resource allocation constraints, where current high seed output suppressed flowering in the following year. Our results demonstrate that community-level phenology emerges from the interplay between phenophase-specific climatic responses and endogenous physiological linkages across phenophases. These findings challenge climate-centric phenological models and highlight the need to integrate internal plant resource dynamics when forecasting ecosystem responses to environmental change.

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Cite This Study

Tang et al. (2026) studied this question.

synapsesocial.com/papers/69ba43384e9516ffd37a43c5https://doi.org/10.1093/jpe/rtag042
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