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Article Abstract

Biomass and area ratios between leaves, stems and roots regulate many physiological and ecological processes. The Huber value H (sapwood area/leaf area ratio) is central to plant water balance and drought responses. However, its coordination with key plant functional traits is poorly understood, and prevents developing trait-based prediction models. Based on theoretical arguments, we hypothesise that global patterns in H of terminal woody branches can be predicted from variables related to plant trait spectra, that is plant hydraulics and size and leaf economics. Using a global compilation of 1135 species-averaged H , we show that H varies over three orders of magnitude. Higher H are seen in short small-leaved low-specific leaf area (SLA) shrubs with low K in arid relative to tall large-leaved high-SLA trees with high K in moist environments. All traits depend on climate but climatic correlations are stronger for explanatory traits than H . Negative isometry is found between H and K , suggesting a compensation to maintain hydraulic supply to leaves across species. This work identifies the major global drivers of branch sapwood/leaf area ratios. Our approach based on widely available traits facilitates the development of accurate models of above-ground biomass allocation and helps predict vegetation responses to drought.

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http://dx.doi.org/10.1111/nph.15998DOI Listing

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