J Plant Ecol ›› Advance articles     DOI:10.1093/jpe/rtag236

    Next Articles

Warm springs and dry summers weaken radial stem growth dependence on primary growth by increasing phenological synchrony between primary and secondary meristems in Pinus taiwanensis

Dina Fu1, 2, 3, Jincheng Gu1, Wenpeng Zhang1, Yang Wang1, Yiyun Zhang1, Xinsheng Liu1, 2, 4*, Xiaoqin Cheng5, Ping Ren6, Franco Biondi4, Sergio Rossi3   

  1. 1. School of Geography and Tourism, Anhui Normal University, Wuhu 241000, China;
    2. Anhui Provincial Key Laboratory of Earth Surface Processes and Regional Response in the Yangtze-Huaihe River Basin, Anhui Normal University, Wuhu, China;
    3. Laboratoire sur les écosystèmes terrestres boréaux, Département des Sciences, Fondamentales, Université du Québec à Chicoutimi, Chicoutimi, QC, Canada;
    4. DendroLab, Department of Natural Resources and Environmental Science, University of Nevada, Mail Stop 0186, Reno, NV 89557, USA;
    5. School of Ecology and Nature Conservation, Beijing Forestry University, Beijing 100083, China;
    6. College of Life Sciences, Anhui Normal University, Wuhu 241000, Anhui, China
    *Correspondence: Xinsheng Liu, E-mail address: (xsliu287@gmail.com)
  • Received:2025-12-29 Revised:2026-08-26 Accepted:2026-09-13 Published:2026-09-28
  • Supported by:
    This work was supported by the Natural Science Foundation of Anhui Province (2408085MD096), the National Natural Science Foundation of China (41961008, 41561011), and University Natural Science Research Project of Anhui Province (2023AH040020). F.B. was funded in part by the Experiment Station of the College of Agriculture, Biotechnology, and Natural Resources at the University of Nevada, Reno, USA

Abstract: A complete integration of the phenology of primary and secondary meristems is essential for understanding the tree growth trajectories under changing climates and the consequences for carbon sequestration in forest ecosystems. Nevertheless, the extent to which the organs of trees may respond differently to climate change, and whether such divergence will alter their functional linkages, remain insufficiently understood. We conducted weekly observations of primary and secondary growth in Taiwan pine (Pinus taiwanensis Hayata) across an elevational gradient in the subtropical forests of southeastern China during 2017-2019, including one year with an extreme drought event. Needle unfolding and shoot elongation began between late March and early April at high elevations, and earlier in mid-to-late March at low elevations. Shoot and needle growth ceased by late May and late August, respectively. Stem growth started in late March regardless of site and year, but its cessation varied considerably, from August to November, with earlier cessation being observed in late July under extreme drought conditions. Primary growth was more responsive to spring temperature but less sensitive to summer-autumn drought than secondary growth. These organ-specific and seasonally asymmetric phenological responses systematically shifted the relative timings of primary and secondary growth, increasing the synchrony between needle and stem activity under warmer and drier conditions and the potential competition for carbon resources among organs. In the long run, the ongoing climate change could amplify the phenological synchrony between needle and stem growth through organ-specific responses, which may alter carbon allocation strategies and constrain radial stem growth in subtropical forest ecosystems.

The coordination between primary and secondary growth phenology and its impact on radial growth under climate change remain poorly understood. Based on multi-year growth observations of Pinus taiwanensis across an elevational gradient on Lushan Mountain, we found that spring warming and summer-autumn drought induced seasonally asymmetric phenological responses of shoots and stems, resulting in greater phenological synchrony between needle and stem growth. This increased phenological synchrony may intensify competition for carbon resources among organs, thereby weakening the dependence of radial stem growth on primary growth.

Key words: leaf development, stem growth, growth onset and cessation, climate change, carbon allocation, Taiwan pine