Poleward shifts in the maximum of spring phenological responsiveness of Ginkgo biloba to temperature in China

Author:

Wu Zhaofei12ORCID,Fu Yongshuo H.1ORCID,Crowther Thomas W.2ORCID,Wang Shuxin1,Gong Yufeng1,Zhang Jing1,Zhao Yun‐Peng3ORCID,Janssens Ivan4ORCID,Penuelas Josep56ORCID,Zohner Constantin M.2ORCID

Affiliation:

1. College of Water Sciences Beijing Normal University Beijing 100875 China

2. Institute of Integrative Biology ETH Zurich (Swiss Federal Institute of Technology) Zurich 8092 Switzerland

3. Systematic & Evolutionary Botany and Biodiversity Group, MOE Key Laboratory of Biosystem Homeostasis and Protection, College of Life Sciences Zhejiang University Hangzhou 310058 China

4. Plants and Ecosystems (PLECO), Department of Biology University of Antwerp B‐2610 Wilrijk Belgium

5. CREAF, Cerdanyola del Vallès Barcelona 08193 Catalonia Spain

6. CSIC, Global Ecology Unit CREAF‐CSIC‐UAB Bellaterra Barcelona 08193 Catalonia Spain

Abstract

Summary Global warming is advancing the timing of spring leaf‐out in temperate and boreal plants, affecting biological interactions and global biogeochemical cycles. However, spatial variation in spring phenological responsiveness to climate change within species remains poorly understood. Here, we investigated variation in the responsiveness of spring phenology to temperature (RSP; days to leaf‐out at a given temperature) in 2754 Ginkgo biloba twigs of trees distributed across subtropical and temperate regions in China from 24°N to 44°N. We found a nonlinear effect of mean annual temperature on spatial variation in RSP, with the highest response rate at c. 12°C and lower response rates at warmer or colder temperatures due to declines in winter chilling accumulation. We then predicted the spatial maxima in RSP under current and future climate scenarios, and found that trees are currently most responsive in central China, which corresponds to the species' main distribution area. Under a high‐emission scenario, we predict a 4‐degree latitude shift in the responsiveness maximum toward higher latitudes over the rest of the century. The identification of the nonlinear responsiveness of spring phenology to climate gradients and the spatial shifts in phenological responsiveness expected under climate change represent new mechanistic insights that can inform models of spring phenology and ecosystem functioning.

Funder

China Scholarship Council

Higher Education Discipline Innovation Project

National Science Fund for Distinguished Young Scholars

National Natural Science Foundation of China

Publisher

Wiley

Subject

Plant Science,Physiology

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