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Updated: Jan 8, 2026

A Simple Protocol for Mapping the Plant Root System Architecture Traits
Published on: February 10, 2023
亜高山帯林における根の水分吸収に対する種特異的な細根特性の優位性
Taiga Masumoto1, Yuki Hashimoto1, Koichi Takahashi1,2
1Faculty of Science, Shinshu University, Matsumoto, 390-8621, Japan.
Abstract:
Subalpine forests are one of the regions where the adjustment of fine-root water uptake becomes important for tree adaptation; however, this process has not been adequately investigated. Here, we aimed to detect species-specific elevational variation in fine-root water uptake and its relationship with the variation in fine-root functional traits in subalpine forests. Fine-root water flux (WFsoil-root) was evaluated from direct measurement of the water potential difference between the soil and fine roots, and the hydraulic conductivity of fine roots of Abies mariesii and Betula ermanii. Additionally, we measured the average diameter, specific root length, and root tissue density (RTD) as morphological traits, and nitrogen content (N) as a chemical trait. These traits were compared at different elevations (2,000, 2,300, and 2,500 m), and the relationships between WFsoil-root and root morphological and chemical traits were evaluated. The WFsoil-root of A. mariesii was highest at 2,500 m compared to the WFsoil-root value of B. ermanii at 2,300 m. These results suggest that the limiting factors of fine-root water uptake differ between A. mariesii and B. ermanii in subalpine forests. Additionally, WFsoil-root covaried with the RTD-N axis along the elevational gradient, and trees increased WFsoil-root with increasing RTD. This result brings the new insight that higher RTD of fine root could function as the acquisitive traits for water uptake in subalpine forests. However, covariation of WFsoil-root with RTD-N axis was less obvious in A. mariesii than B. ermanii indicating different driving mechanisms of WFsoil-root between the species. Trees must cope with several factors limiting their growth in subalpine forests. Adjustment of WFsoil-root may contribute to the species-specific strategy, which compensates for their physiological processes and growth, and coordination with the RTD-N axis would be important for effective water uptake in cold and carbon-limited environments.
関連する概念動画
Water and Mineral Acquisition
Responses to Gravity and Touch
Xylem and Transpiration-driven Transport of Resources
Responses to Drought and Flooding
Primary and Secondary Growth in Roots and Shoots
Responses to Salt Stress

