J Plant Ecol ›› 2026, Vol. 19 ›› Issue (4): rtaf223.DOI: 10.1093/jpe/rtaf223

• Journal Article •     Next Articles

Global patterns and drivers of drought resilience across latitudes and forest taxa

Ye Zhang, Yixue Hong, Xibin Sun, Weina Jia* and Hao Chen*   

  1. State Key Laboratory of Biocontrol, School of Ecology, Shenzhen Campus of Sun Yat-sen University, Shenzhen 518107, China
    *Corresponding authors. E-mails: chenhao27@mail.sysu.edu.cn (H.C.); jia_weina@163.com (W.J.)
    These authors contributed equally to this work.
  • Received:2025-08-30 Revised:2025-10-03 Accepted:2025-12-08 Published:2026-08-01
  • Supported by:
    This work was supported by Guangdong Basic and Applied Basic Research Foundation (2025A1515011004) and National Natural Science Foundation of China (32501472).

森林干旱恢复力的全球格局及其驱动因素

Abstract: Extreme drought events are projected to increase in frequency and severity, posing serious threats to the stability of forest ecosystems. Forest drought resilience—an essential indicator of ecosystem stability and carbon sequestration potential under climate change—remains poorly understood in terms of its spatial distribution and variation across plant functional types. Here, we assessed global patterns and underlying drivers of forest drought resilience across latitudinal gradients, plant functional types (angiosperms vs. gymnosperms), and taxonomic ranks, using generalized linear models that integrate 282 tree-ring chronologies with satellite environmental and biotic data. Results showed that high-latitude forests had significantly lower drought resilience than those in mid- and low-latitude regions, primarily due to the combined constraints of limited water availability and low temperature. Angiosperm-dominated forests exhibited higher drought resilience than gymnosperm-dominated forests, with the former mainly driven by nutrients and heat, but the latter more constrained by water availability and species diversity. Forest drought resilience also differed among specific taxonomic ranks. Notably, the angiosperm genus Quercus exhibited high drought resilience, while some gymnosperm genera, such as Tsuga and Juniperus, also demonstrated strong drought tolerance through distinct physiological and morphological adaptations. These findings reveal that forest drought resilience is jointly shaped by climatic constraints and biotic traits, with clear latitudinal and phylogenetic differences. Recognizing these patterns can inform region-specific forest management and conservation strategies aimed at enhancing ecosystem stability under intensifying climate change.

Key words: forest ecosystems, ecosystem stability, drought resilience, latitudinal pattern, plant functional type, taxonomic ranks

摘要:
全球极端干旱事件频率和强度预计将不断增加,对森林生态系统稳定性构成严重威胁。森林干旱恢复力作为衡量气候变化背景下生态系统稳定性及碳汇潜力的关键指标,其空间分布特征以及在不同植物功能型间的差异,仍缺乏系统认识。为此,本研究整合了全球282条树轮数据以及生物和非生物因子,利用广义线性模型评估了不同纬度梯度、植物功能型(被子与裸子植物)以及分类阶元森林干旱恢复力的空间格局及其驱动机制。结果表明: 1)高纬度森林的干旱恢复力显著低于中、低纬度,这主受要温度和水分的共同限制有关。2)与裸子植物占优势的森林相比,被子植物占优势的森林表现出更高的干旱恢复力;被子植物森林的干旱恢复力主要受养分条件与热量因子的驱动,而裸子植物森林则更多受水分条件和物种多样性的制约。3)不同分类阶元的森林干旱恢复力存在明显差异。值得注意的是,被子植物中栎属(Quercus)表现出较高的干旱恢复力,而部分裸子植物属(如铁杉属Tsuga和刺柏属Juniperus)也通过不同生理与形态适应机制展现出较强的耐旱能力。上述发现揭示了森林干旱恢复力是气候约束与生物性状共同作用的结果,并呈现出清晰的纬度格局与系统发育差异。本研究结果有助于制定区域针对性的森林管理与保护策略,进而提升气候变化加剧背景下的生态系统稳定性。

关键词: 森林生态系统, 生态系统稳定性, 干旱恢复力, 纬度格局, 植被功能类型, 分类阶元