Effective chilling temperatures for dormancy release in extratropical forest trees increase from cold to warm regions

R Rui Zhang F Fucheng Wang (State Key Laboratory for Development and Utilization of Forest Food Resources, Zhejiang A&F University) J Jinbin Zheng (State Key Laboratory for Development and Utilization of Forest Food Resources, Zhejiang A&F University) L Lei Chen H Hongshuang Gu (Key Laboratory of Bio-Resource and Eco-Environment of Ministry of Education, College of Life Sciences, Sichuan University) Y Yu Zhao Y Yongshuo Fu (College of Water Sciences, Beijing Normal University) Y Yann Vitasse (Ecosystem Ecology, Forest Dynamics, Swiss Federal Institute for Forest, Snow and Landscape Research) X Xinli Chen (National Key Laboratory for Development and Utilization of Forest Food Resources, Zhejiang A&F University) H Heikki Hänninen (State Key Laboratory for Development and Utilization of Forest Food Resources, Zhejiang A&F University) C Constantin M. Zohner (Department of Environmental Systems Science, Institute of Integrative Biology, ETH Zurich (Swiss Federal Institute of Technology)) J Jiasheng Wu (Key Laboratory of Photochemical Conversion and Optoelectronic Materials)

Abstract

Seasonal dormancy in extratropical trees is a critical adaptation that synchronizes growth with favorable climatic conditions. Traditionally, the effective chilling temperatures (ECT) required for dormancy release have been assumed to be fixed, ranging between 0 and 10 °C, based largely on studies in cold climates. However, whether the ECT range varies across diverse climatic regions remains unclear, limiting our ability to predict tree responses to climate change. Here, we quantify ECT variation using controlled experiments on 14 species and long-term phenological observations of 65 species across a ~3,000 km latitudinal gradient in China. Our experimental results show that the estimated upper ECT threshold increases by 0.27 ± 0.06 °C per decreasing degree of latitude, indicating an expansion of the ECT range toward higher temperatures in warmer climates. Our modeling analysis of long-term phenological records supports this trend, showing a comparable increase of 0.18 ± 0.02 °C per decreasing degree of latitude. These findings provide empirical evidence of latitudinal variation in ECT, offering insights into the evolutionary adaptations in shaping tree seasonal growth across diverse climates, challenging the traditional view of a fixed 0 to 10 °C range. Incorporating this adaptive variation into vegetation models and management strategies is crucial for improving predictions of forest phenology, productivity, and resilience under climate warming.

Article Details

Volume / Issue Vol. 123, Issue 2
Published January 13, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (12)

R

Rui Zhang

F

Fucheng Wang

State Key Laboratory for Development and Utilization of Forest Food Resources, Zhejiang A&F University

J

Jinbin Zheng

State Key Laboratory for Development and Utilization of Forest Food Resources, Zhejiang A&F University

L

Lei Chen

H

Hongshuang Gu

Key Laboratory of Bio-Resource and Eco-Environment of Ministry of Education, College of Life Sciences, Sichuan University

Y

Yu Zhao

Y

Yongshuo Fu

College of Water Sciences, Beijing Normal University

Y

Yann Vitasse

Ecosystem Ecology, Forest Dynamics, Swiss Federal Institute for Forest, Snow and Landscape Research

X

Xinli Chen

National Key Laboratory for Development and Utilization of Forest Food Resources, Zhejiang A&F University

H

Heikki Hänninen

State Key Laboratory for Development and Utilization of Forest Food Resources, Zhejiang A&F University

C

Constantin M. Zohner

Department of Environmental Systems Science, Institute of Integrative Biology, ETH Zurich (Swiss Federal Institute of Technology)

J

Jiasheng Wu

Key Laboratory of Photochemical Conversion and Optoelectronic Materials