Climate and traits drive bark decomposition patterns at global scale
Chenhui Chang · Jiayuan Liu · Biao Zhu · Gbadamassi G. O. Dossa · Wanqin Yang · Xiaodan Wang · Johannes H. C. Cornelissen
期刊Nature Communications / Nat Commun
类型Article
发表2026-01-13 (online)
卷期页17(1): 299
收录2026-10-03
被浏览…
关键词decomposition ratemean annual temperaturemean annual precipitationfuture climate scenarioscarbon cyclenutrient cycling
标签—
树皮代表了全球大量的碳储备,占木本生物量的 2%至 20%,并在碳和养分循环中发挥着独特作用。目前尚不清楚不同非生物和生物驱动因素如何在全球范围内促成树皮分解,或这些关系在气候变化中如何表现。在这里,我们汇总了一个全球数据集,以估算当前树皮分解速率(*k* 值)的空间变异性,并采用三种机器学习方法预测 *k* 在未来气候情景中的响应。我们发现,全球范围内树皮分解速度是之前估计的树干(包括树皮)的 2.9 倍。平均 *k* 值从北方针叶区的 0.093 年-(1) 年-1 向上升至热带区的 1.339 年-(1)。被子植物树皮分解速度比裸子植物树皮(0.198( 年)) 更快(*k* = 0.450( 年)。) 气候,尤其是年平均气温和年平均降水量,以及树皮磷浓度,是导致树皮分解的主要因素。四种主要未来气候情景预测,温暖和湿润地区树皮分解将减缓,而寒冷和干燥地区则加速。我们的结果强调了在碳循环模型中考虑树皮分解的重要性。
Tree bark represents a large global carbon stock, comprising 2-20 % of woody biomass, and plays a distinct role in carbon and nutrient cycling. It is poorly understood how different abiotic and biotic drivers contribute to bark decomposition globally, or how these relationships play out in a changing climate. Here, we compile a global dataset to estimate the spatial variability of current bark decomposition rates (k values) and employ three machine learning approaches to project the response of k in future climate scenarios. We find that, globally, bark decomposes 2.9 times faster than the rate previously estimated for tree trunks (including bark). Mean k values increase latitudinally from 0.093 year-1 in the boreal region to 1.339 year-1 in the tropical region. Angiosperm bark decomposes faster (k = 0.450 year-1) than gymnosperm bark (0.198 year-1). Climate, especially mean annual temperature and mean annual precipitation, and bark phosphorus concentration, are the predominant factors driving bark decomposition. Four leading future climate scenarios predict bark decomposition to slow down in warm and wet regions and accelerate in cold and dry regions. Our results highlight the importance of considering bark decomposition in carbon cycling models. Bark decomposition could significantly affect global carbon and nutrient cycling. Here, the authors report the global trend of bark decomposition rates, identify the key drivers in different climate regions, and predict the response of bark decomposition to future climate change.

@article{chang2026,
author = {Chenhui Chang and Jiayuan Liu and Biao Zhu and Gbadamassi G. O. Dossa and Wanqin Yang and Xiaodan Wang and Johannes H. C. Cornelissen},
title = {Climate and traits drive bark decomposition patterns at global scale},
journal = {Nature Communications},
year = {2026},
volume = {17},
number = {1},
pages = {299},
doi = {10.1038/s41467-025-68249-4},
publisher = {Springer Science and Business Media LLC},
}· END ·