Chin J Plant Ecol ›› 2023, Vol. 47 ›› Issue (7): 943-953.DOI: 10.17521/cjpe.2022.0067

• Research Articles • Previous Articles     Next Articles

Dynamic response of functional traits to fertilization in Leymus chinensis

DAI Jing-Zhong1, BAI Yu-Ting2, WEI Zhi-Jun3, ZHANG Chu4, XIN Xiao-Ping4, YAN Yu-Chun4, YAN Rui-Rui4,*()   

  1. 1College of Agriculture and Forestry Engineering and Planning, Tongren University, Tongren, Guizhou 554300, China
    2Shandong Key Laboratory of Eco-Environmental Science for Yellow River Delta, Binzhou University, Binzhou, Shandong 256603, China
    3College of Grassland, Resources and Environment, Inner Mongolia Agricultural University, Hohhot 010019, China
    4Institute of Agricultural Resources and Regional Planning, Chinese Academy of Agricultural Sciences, Beijing 100081, China
  • Received:2022-02-18 Accepted:2022-07-06 Online:2023-07-20 Published:2023-07-21
  • Contact: *YAN Rui-Rui(yanruirui@caas.cn)
  • Supported by:
    the National Key R&D Program of China(2021YFF0703904);the National Key R&D Program of China(2021YFD1300503);The National Natural Science Foundation of China(31971769);Construction of Agricultural Science and Technology Innovation Alliance-Basic Long-term Agricultural Science and Technology Work(NAES037SQ18);The Fundamental Research Funds for Central Non-profit Scientific Institution(Y2020YJ19);The Fundamental Research Funds for Central Non-profit Scientific Institution(1610132021016);The Special Funding for Modern Agricultural Technology Systems from the Chinese Ministry of Agriculture(CARS-34)

Abstract:

Aims The aims are to understand the change rule and response mechanism of Leymus chinensis under the disturbance and to provide a theoretical basis and reference for the research on the response of plant functional traits to environmental changes under interference and the restoration of plant population in natural grassland.

Methods We investigated the impacts of fertilization on functional traits of leaves, stems and the whole plant of L. chinensis in the vegetative phase in a meadow in Hulun Buir. Firstly, a ground intrusive root-cutting machine (9QP-830) was used to cut the roots of the grassland, and then different levels of nitrogen and phosphorus mixed fertilizers were applied. Finally, multiple functional traits including single plant height, leaf length, natural leaf width, unfolded leaf width, stem width, stem length, leaf mass, stem mass and single plant mass were measured by stages during the vegetative growth period of L. chinensis. The dynamic changes of functional traits before and after fertilization were analyzed.

Important findings (1) Fertilization significantly increased the aboveground biomass of L. chinensis in the later vegetative growth stage, increased plant height, leaf length, natural leaf width, unfolded leaf width, leaf area, stem length, stem width and stem mass, and decreased leaf dry matter content and stem dry matter content. (2) Fertilization significantly modified the changing trend of functional traits of L. chinensis during the nutritional period. With the increase of fertilization level, plant height, leaf length, natural leaf width, unfolded leaf width, leaf area, specific leaf area, stem length, stem width and stem mass increased gradually from the first increase and then decrease trend of change into a gradual increase, while leaf dry matter content and stem dry matter content decreased gradually. (3) There was a close relationship between phenotypic traits and mass traits of L. chinensis. Leaf area was positively correlated with aboveground biomass and stem dry matter content, and negatively correlated with leaf dry matter content. (4) Fertilization changed the contribution rate of phenotypic traits to aboveground biomass during vegetative growth period of L. chinensis. After fertilization, the phenotypic weight of L. chinensis changed from “concentration-dispersion-concentration-dispersion-concentration” to “dispersion-concentration-dispersion-concentration-dispersion”. In the process of vegetative growth of L. chinensis, plant height is the most sensitive trait to fertilization, and it is also the main phenotypic driving factor affecting the aboveground biomass.

Key words: Leymus chinensis, fertilization, functional trait, dynamic change, sensibility, driving factor