Fine root inputs to soil reduce growth of a neighbouring plant via distinct mechanisms dependent on root carbon chemistry

被引:22
|
作者
Meier, Courtney L. [1 ,2 ]
Keyserling, Kaleb [3 ]
Bowman, William D. [1 ,2 ]
机构
[1] Univ Colorado, Dept Ecol & Evolutionary Biol, Boulder, CO 80309 USA
[2] Univ Colorado, Mt Res Stn, Inst Arctic & Alpine Res, Boulder, CO 80309 USA
[3] Kenyon Coll, Dept Biol, Gambier, OH 43022 USA
基金
美国安德鲁·梅隆基金会;
关键词
allelopathy; nitrogen cycling; plant growth; plant secondary compounds; plant-soil interaction; rhizodeposition; root chemistry; soil nutrients; ALPINE TUNDRA; MICROBIAL ACTIVITY; NITROGEN DYNAMICS; LITTER; TANNINS; DECOMPOSITION; ECOSYSTEM; NUTRIENT; IMMOBILIZATION; AVAILABILITY;
D O I
10.1111/j.1365-2745.2009.01537.x
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
P> Plant carbon (C) and nitrogen (N) inputs to soil interact with microbes and abiotic factors like climate and pH to influence soil fertility and plant productivity. Although root exudates and root litter are important factors affecting the cycling of nutrients critical to plant growth, many studies remain focused on effects of above-ground litter inputs. Using two species that co-dominate alpine moist meadows as a model system (the phenolic-rich forb Geum rossii, and the fast-growing grass Deschampsia caespitosa), we asked whether C from G. rossii fine roots could reduce D. caespitosa growth. We hypothesized that root C would indirectly reduce D. caespitosa growth by stimulating soil microbes, thus restricting plant N supplies. We predicted that this effect could be overcome by fertilization with N. We also hypothesized that G. rossii root phenolics could allelopathically inhibit D. caespitosa growth, and we predicted that direct, allelopathic inhibition would not be reversible with N additions. Both cellulose and phenolic-rich root C additions inhibited D. caespitosa growth in field microcosms, relative to controls. N additions reversed the negative effects of cellulose on plant growth but did not reverse the inhibitory effects of phenolic-rich C additions. A companion soil incubation experiment showed that both types of C addition reduced N availability relative to controls, and there was a strong negative correlation between N availability and substrate-induced soil respiration. Our results indicate that root C inputs to soil can have substantial, negative effects on plant growth. Reduced plant growth was likely to be caused by (i) indirect interactions between root C and soil microbes lowering plant N supply; and (ii) a mechanism independent of N supply, possibly involving allelopathic effects of G. rossii phenolic compounds on D. caespitosa root growth. Synthesis. Fine root inputs to soil (i.e. phenolic-rich C and cellulose C) reduced a neighbouring plant's growth and the chemical composition of the root C influenced whether growth inhibition could be overcome by increased plant N supply. Negative effects of phenolic-rich root inputs on plant growth could be an under-appreciated factor structuring plant communities, particularly in N-limited systems dominated by phenolic-rich species.
引用
收藏
页码:941 / 949
页数:9
相关论文
共 28 条
  • [1] Plant carbon inputs through shoot, root, and mycorrhizal pathways affect soil organic carbon turnover differently
    Huang, Junsheng
    Liu, Weixing
    Yang, Sen
    Yang, Lu
    Peng, Ziyang
    Deng, Meifeng
    Xu, Shan
    Zhang, Beibei
    Ahirwal, Jitendra
    Liu, Lingli
    SOIL BIOLOGY & BIOCHEMISTRY, 2021, 160
  • [2] Effects of chemical inputs, plant genotype and phenotypic plasticity on soil carbon storage by wheat root systems
    Rouch, Laly
    Follain, Stephane
    Pimet, Eric
    Bizouard, Florian
    Henault, Catherine
    Blouin, Manuel
    PLANT AND SOIL, 2023, 486 (1-2) : 561 - 574
  • [3] Effects of chemical inputs, plant genotype and phenotypic plasticity on soil carbon storage by wheat root systems
    Laly Rouch
    Stéphane Follain
    Eric Pimet
    Florian Bizouard
    Catherine Hénault
    Manuel Blouin
    Plant and Soil, 2023, 486 : 561 - 574
  • [4] Fine root growth and contribution to soil carbon in a mixed mature Pinus koraiensis forest
    Cunguo Wang
    Shijie Han
    Yumei Zhou
    Junhui Zhang
    Xingbo Zheng
    Guanhua Dai
    Mai-He Li
    Plant and Soil, 2016, 400 : 275 - 284
  • [5] Root order-dependent seasonal dynamics in the carbon and nitrogen chemistry of poplar fine roots
    Hongying Chen
    Yufeng Dong
    Tan Xu
    Yanping Wang
    Huatian Wang
    Baoli Duan
    New Forests, 2017, 48 : 587 - 607
  • [6] Fine root growth and contribution to soil carbon in a mixed mature Pinus koraiensis forest
    Wang, Cunguo
    Han, Shijie
    Zhou, Yumei
    Zhang, Junhui
    Zheng, Xingbo
    Dai, Guanhua
    Li, Mai-He
    PLANT AND SOIL, 2016, 400 (1-2) : 275 - 284
  • [7] Root order-dependent seasonal dynamics in the carbon and nitrogen chemistry of poplar fine roots
    Chen, Hongying
    Dong, Yufeng
    Xu, Tan
    Wang, Yanping
    Wang, Huatian
    Duan, Baoli
    NEW FORESTS, 2017, 48 (05) : 587 - 607
  • [8] Root exudate chemistry affects soil carbon mobilization via microbial community reassembly
    Wen, Tao
    Yu, Guang-Hui
    Hong, Wen-Dan
    Yuan, Jun
    Niu, Guo-Qing
    Xie, Peng-Hao
    Sun, Fu-Sheng
    Guo, Lao-Dong
    Kuzyakov, Yakov
    Shen, Qi-Rong
    FUNDAMENTAL RESEARCH, 2022, 2 (05): : 697 - 707
  • [9] The response of fine root endophyte (Glomus tenue) to waterlogging is dependent on host plant species and soil type
    Orchard, S.
    Standish, R. J.
    Nicol, D.
    Gupta, V. V. S. R.
    Ryan, M. H.
    PLANT AND SOIL, 2016, 403 (1-2) : 305 - 315
  • [10] The response of fine root endophyte (Glomus tenue) to waterlogging is dependent on host plant species and soil type
    S. Orchard
    R. J. Standish
    D. Nicol
    V. V. S. R. Gupta
    M. H. Ryan
    Plant and Soil, 2016, 403 : 305 - 315