Old-growth tropical forests store vast amounts of carbon in their aboveground biomass (AGB), yet the relative roles of abiotic factors such as climate, soil, and topography in governing its spatial distribution remain poorly understood. In particular, the degree to which climate acts on AGB through forest structure is still poorly quantified at the pantropical scale. Using a pantropical dataset of more than 2,000 old-growth forest plots and a structure-explicit framework, we assess how climate influences AGB through its effects on four structural attributes: basal area, mean diameter, stem density, and basal area-weighted wood density. We find that climate shapes AGB primarily through its effects on forest structure. However, structural attributes respond to climate in opposite directions, so climate’s net effect on AGB largely cancels out, and no clear climate-AGB relationship emerges across tropical regions. Moreover, only wood density responds consistently, decreasing with annual precipitation and increasing with precipitation seasonality, whereas all other attributes respond to climate differently from one region to another. This geographical variation further obscures any global climatic signal on AGB and points to the role of biogeographic history in shaping forest structure. Our findings highlight the central role of the climate-structure nexus in explaining AGB variation, and call for structure-explicit models to improve carbon stock predictions and inform climate adaptation strategies.
Tropical forests in Southeast Asia are among the most biologically diverse ecosystems on Earth and are critical for carbon storage, water regulation, and climate stabilization. Yet, these forests face severe threats from deforestation due to illegal logging, agricultural expansion, and urban development. Conservation e...
Forests play critical roles in biodiversity, climate regulation, and human well-being, yet their responses to simultaneous environmental changes remain poorly understood. Across the United States, forest demographic rates are influenced by climate change, atmospheric pollution trends, and systematic changes in forest d...
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The three-dimensional configuration of tree crowns controls resource distribution within canopies, thus driving forest ecosystem functioning, but landscape fragmentation and canopy structure degradation is causing forest biomass loss. Yet, how canopy structural diversity mediates the impact of anthropogenic disturban...
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Understanding how multidimensional biodiversity influences forest biomass carbon storage is crucial for sustainable forest management. However, empirical evidence on the mechanisms and relative contributions of three dimensions of tree diversity (species, functional, and structural) to forest biomass stocks across va...
An-Chi Wu, X. Xiong, Guoyi Zhou et al.· Journal of Plant Ecology· 0 citations