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Updated: Mar 7, 2026

Preparation of Fungal and Plant Materials for Structural Elucidation Using Dynamic Nuclear Polarization Solid-State NMR
Published on: February 12, 2019
High-resolution diel dynamics of nonstructural carbohydrates in trees reveal organ-level coordination and
Weibin Li1, Yingyi Pu1, Fan Li1
1State Key Laboratory of Herbage Improvement and Grassland Agro-Ecosystems, Key Laboratory of Grassland Livestock Industry Innovation, Ministry of Agriculture and Rural Affairs, Engineering Research Center of Grassland Industry, Ministry of Education, College of Pastoral Agriculture Science and Technology, Lanzhou University, Lanzhou 730020, China.
Abstract:
Nonstructural carbohydrates (NSC), comprising soluble sugars and starch, serve as critical metabolic reserves buffering trees against temporal carbon supply-demand imbalances. Despite their functional importance, diel NSC dynamics in trees remain elusive, which limits mechanistic understanding of carbon allocation strategies and also restricts the consistency in sampling protocols. Here, we conducted a high-resolution analysis of diel NSC dynamics in leaves and branches of 15 tree species across 4 climatically distinct sites in western China using generalized additive mixed models and a simplified proportional-integral-derivative (PID) control framework. We found that starch and soluble sugars exhibited consistent diel patterns, peaking in the late afternoon and declining to minima before dawn. Starch peaked earlier and exhibited greater amplitudes than soluble sugars, thereby dominating fluctuations of total NSC concentration. Mid-morning (09:00 to 11:00) concentration of NSC fractions closely approximated diel means, offering a practical benchmark for standardized sampling. Variations in diel means and amplitudes were explained more by environmental contexts, particularly vapor pressure deficit (VPD), than by species identity, while trait associations revealed that wood density correlated negatively with diel means and diameter at breast height (DBH) with diel amplitudes. Diel NSC dynamics were actively regulated and coordinated across tissues, with environmental conditions modulating both their magnitude and central tendency. This study highlights the importance of incorporating temporal resolution, environmental context, and trait-based trade-offs into assessments of plant carbon status, providing insights to refine process-based models of carbon allocation and resilience under climate change.
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