Concentration-dependent effects of mixed phenolic acids on growth, photosynthetic traits, and nutrient stoichiometry of Schima superba seedlings

Soil-borne phenolic acids are important components of the belowground chemical environment and can influence plant growth and physiological performance. However, the concentration-dependent responses of tree seedlings to phenolic acids occurring in mixed-stand soil solutions remain insufficiently understood. In this study, we conducted a controlled soil-based experiment to examine the effects of a field-informed ferulic–veratric acid mixture on growth, biomass allocation, photosynthetic traits, and leaf nutrient stoichiometry in Schima superba seedlings. S. superba seedlings showed clear concentration-dependent responses to the fixed-ratio ferulic–veratric acid mixture. The 0.5× treatment promoted biomass accumulation and several growth traits, whereas higher exposure levels reduced total and leaf biomass and increased the root-to-shoot ratio. Height elongation remained relatively stable across treatments, while root-collar diameter was reduced at the highest exposure level, indicating greater sensitivity of biomass production and radial growth than height growth. Higher phenolic-acid exposure also decreased chlorophyll and carotenoid contents and reduced fitted maximum net photosynthetic rate ( P n, max ). Patterns of stomatal conductance and intercellular CO 2 concentration suggested that stomatal closure alone could not fully account for the decline in photosynthesis, although stomatal and non-stomatal contributions could not be quantitatively partitioned. Leaf P concentration declined and C/P increased at higher exposure levels, whereas leaf N and N-related stoichiometric ratios remained comparatively stable, indicating that leaf P status was particularly responsive to phenolic-acid exposure. Together, these responses indicate coordinated changes in growth, photosynthetic performance, and P-related nutritional status under increasing phenolic-acid exposure. S. superba seedlings exhibited clear concentration-dependent responses to the fixed-ratio ferulic–veratric acid mixture, with low exposure promoting biomass accumulation and higher exposure constraining growth and photosynthetic performance. Elevated phenolic-acid exposure was also associated with reduced leaf P concentration and increased C/P, indicating altered P-related nutritional status. These findings indicate coordinated changes in growth, photosynthetic performance, biomass allocation, and nutrient status under increasing phenolic-acid exposure. The results provide a basis for further evaluating how soil-borne phenolic acids may influence seedling performance and belowground chemical interactions under natural mixed-forest conditions.

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Publication Details

Journal
BMC Plant Biology
Published
2026-09-15
DOI
https://doi.org/10.1186/s12870-026-09955-z
Primary Topic
Seedling growth and survival studies
Type
article
Field-Weighted Citation Impact
0.00

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article

Concentration-dependent effects of mixed phenolic acids on growth, photosynthetic traits, and nutrient stoichiometry of Schima superba seedlings

Zhichun Zhou, Jiabao Yao, Ren Liu, Bin Xiao et al.
BMC Plant Biology
Seedling growth and survival studies
article

Concentration-dependent effects of mixed phenolic acids on growth, photosynthetic traits, and nutrient stoichiometry of Schima superba seedlings

Zhichun Zhou, Jiabao Yao, Ren Liu, Bin Xiao, Fengqing Li, Yuan Yuan, Yijie Ding, Qiwu Sun, Ying Ding, Lei Liu, Keqin Xu, Zongming Cai
article en

Abstract

Soil-borne phenolic acids are important components of the belowground chemical environment and can influence plant growth and physiological performance. However, the concentration-dependent responses of tree seedlings to phenolic acids occurring in mixed-stand soil solutions remain insufficiently understood. In this study, we conducted a controlled soil-based experiment to examine the effects of a field-informed ferulic–veratric acid mixture on growth, biomass allocation, photosynthetic traits, and leaf nutrient stoichiometry in Schima superba seedlings. S. superba seedlings showed clear concentration-dependent responses to the fixed-ratio ferulic–veratric acid mixture. The 0.5× treatment promoted biomass accumulation and several growth traits, whereas higher exposure levels reduced total and leaf biomass and increased the root-to-shoot ratio. Height elongation remained relatively stable across treatments, while root-collar diameter was reduced at the highest exposure level, indicating greater sensitivity of biomass production and radial growth than height growth. Higher phenolic-acid exposure also decreased chlorophyll and carotenoid contents and reduced fitted maximum net photosynthetic rate ( P n, max ). Patterns of stomatal conductance and intercellular CO 2 concentration suggested that stomatal closure alone could not fully account for the decline in photosynthesis, although stomatal and non-stomatal contributions could not be quantitatively partitioned. Leaf P concentration declined and C/P increased at higher exposure levels, whereas leaf N and N-related stoichiometric ratios remained comparatively stable, indicating that leaf P status was particularly responsive to phenolic-acid exposure. Together, these responses indicate coordinated changes in growth, photosynthetic performance, and P-related nutritional status under increasing phenolic-acid exposure. S. superba seedlings exhibited clear concentration-dependent responses to the fixed-ratio ferulic–veratric acid mixture, with low exposure promoting biomass accumulation and higher exposure constraining growth and photosynthetic performance. Elevated phenolic-acid exposure was also associated with reduced leaf P concentration and increased C/P, indicating altered P-related nutritional status. These findings indicate coordinated changes in growth, photosynthetic performance, biomass allocation, and nutrient status under increasing phenolic-acid exposure. The results provide a basis for further evaluating how soil-borne phenolic acids may influence seedling performance and belowground chemical interactions under natural mixed-forest conditions.

BMC Plant Biology
Chinese Academy of Forestry (CN), Research Institute of Forestry (CN), Experimental Center of Subtropical Forestry (CN)
Natural Science Foundation of Jiangxi Province
Zero hunger
Openalex Percentile: Top 8%
Seedling growth and survival studies
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