Literature DB >> 30628418

[Effect of CO2 Doubling and Different Plant Growth Stages on Rice Carbon, Nitrogen, and Phosphorus and Their Stoichiometric Ratios].

Mei-Ling Tang1,2, Mou-Liang Xiao2, Hong-Zhao Yuan2, Guang-Jun Wang1, Shou-Long Liu2, Zhen-Ke Zhu2, Ti-da Ge2, Jin-Shui Wu2.   

Abstract

The variation characteristics of ecological stoichiometric ratios can reflect the nature of plant adaptation to environmental changes. The C, N, and P contetns, and their stoichiometric ratios in different organs of rice were studied using a CO2 continuous labeling system, by simulating the increase of atmospheric CO2 concentration (800×10-6). The results showed that CO2 doubling promoted the growth of rice organs and increased the root/shoot ratio. CO2 doubling reduced the shoot TN content in different growth periods, increased the C/N ratio in the rice root, shoot, and grain, decreased the N use efficiency, and improved the P use efficiency. Multiple comparison and Venn diagram analyses showed that CO2 concentration only has a significant impact on the TN content in the rice shoot; it contributed little to the variation in rice nutrient content and their stoichiometric ratios, indicating that CO2 doubling had no effect on these. Under the condition of elevated atmospheric CO2 concentrations, the C, N, and P contents and their stoichiometirc ratios, in rice organs had good homeostasis, and the stoichiometric change during growth periods was consistent with "the Growth Rate Theory". In farmland management, appropriate nitrogen fertilizers can alleviate the nutrient balance pressure caused by the increase in CO2 concentration.

Entities:  

Keywords:  CO2 doubling; dynamic equilibrium theory; ecological chemometry; growth rate theory; growth stage

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Year:  2018        PMID: 30628418     DOI: 10.13227/j.hjkx.201804241

Source DB:  PubMed          Journal:  Huan Jing Ke Xue        ISSN: 0250-3301


  1 in total

1.  Homeostatic responses and growth of Leymus chinensis under incrementally increasing saline-alkali stress.

Authors:  Shujie Li; Yujin Huang; Yuefen Li
Journal:  PeerJ       Date:  2021-03-01       Impact factor: 2.984

  1 in total

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