Rhizosphere effects promote soil aggregate stability and associated organic carbon sequestration in rocky areas of desertification

被引:105
作者
Li, Junya [1 ,3 ]
Yuan, Xiaoliang [1 ,3 ]
Ge, Le [4 ]
Li, Qian [4 ]
Li, Zhiguo [1 ]
Wang, Li [1 ]
Liu, Yi [1 ,2 ]
机构
[1] Chinese Acad Sci, Key Lab Aquat Bot & Watershed Ecol, Wuhan Bot Garden, Wuhan 430074, Peoples R China
[2] Chinese Acad Sci, Core Bot Gardens, Ctr Plant Ecol, Wuhan 430074, Peoples R China
[3] Univ Chinese Acad Sci, Beijing 100049, Peoples R China
[4] Nature Conservancy, Beijing 100600, Peoples R China
基金
中国国家自然科学基金;
关键词
Root system; Soil aggregate diameter; C-13 natural abundance; Carbon flow; MICROBIAL COMMUNITY STRUCTURE; ROOT; NITROGEN; DYNAMICS; EROSION; FRACTIONATION; PHOSPHORUS; DETACHMENT; VEGETATION; STRENGTH;
D O I
10.1016/j.agee.2020.107126
中图分类号
S [农业科学];
学科分类号
09 ;
摘要
Soil aggregate stability is an important index for predicting soil water loss and soil erosion resistance. Plant roots effectively control soil erosion and stabilize soil structure, which has a crucial influence on the formation of aggregates and soil organic carbon (SOC) sequestration. We examined how rhizosphere effects influence soil aggregate stability and its associated SOC contents and delta C-13 values, following a proposed extended model of carbon (C) flows between the aggregate size classes in the root systems based on C-13 fractionation in each step of SOC formation. The results show that the rhizosphere effects significantly improved the stability of aggregates. The mean weight diameter (MWD) and geometric mean diameter (GMD) of rhizosphere soil aggregates were significantly higher than those of non-rhizosphere soil aggregates associated with plants with fibrous roots. SOC levels of all size aggregates in the rhizosphere soil of both fibrous and tap root plants were higher than those of non-rhizosphere soil. Moreover, SOC contents increased in the order of silt-clay particles (SCP, <0.05 mm), microaggregates (MIA, 0.05-0.25 mm) and small macroaggregates (SMA, 0.25-1 mm), and then decreased from SMA to large macroaggregates (LMA,> 1 mm). The delta C-13 values in non-rhizosphere soil were generally higher than those in rhizosphere soil in aggregates of the same size class, especially in the tap root plants. Except for the rhizosphere soil of fibrous root plants, the other three soil types (rhizosphere and non-rhizosphere soil of tap root plants, and non-rhizosphere soil of fibrous root plants) were shown to have aggregate delta C-13 values that decreased with increasing soil aggregate size. delta C-13 enrichment of the SOC fractions showed that the general flow direction of SOC was from rhizosphere to non-rhizosphere, and from large aggregates to small aggregates. The C flow in the aggregates of rhizosphere soil was clearly greater than that in the non-rhizosphere soil, especially with the fibrous root plants. These findings suggest that plant roots have the potential to regulate soil structural stability, and enhance soil erosion resistance and SOC sequestration.
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页数:8
相关论文
共 42 条
  • [1] Organic matter stabilization in aggregates and density fractions in paddy soil depending on long-term fertilization: Tracing of pathways by 13C natural abundance
    Atere, Cornelius Talade
    Gunina, Anna
    Zhu, Zhenke
    Xiao, Mouliang
    Liu, Shoulong
    Kuzyakov, Yakov
    Chen, Liang
    Deng, Yangwu
    Wu, Jinshui
    Ge, Tida
    [J]. SOIL BIOLOGY & BIOCHEMISTRY, 2020, 149
  • [2] Coarse and fine root plants affect pore size distributions differently
    Bodner, G.
    Leitner, D.
    Kaul, H. -P.
    [J]. PLANT AND SOIL, 2014, 380 (1-2) : 133 - 151
  • [3] Carbon storage and nutrient mobilization from soil minerals by deep roots and rhizospheres
    Callesen, Ingeborg
    Harrison, Robert
    Stupak, Inge
    Hatten, Jeff
    Raulund-Rasmussen, Karsten
    Boyle, James
    Clarke, Nicholas
    Zabowski, Darlene
    [J]. FOREST ECOLOGY AND MANAGEMENT, 2016, 359 : 322 - 331
  • [4] Soil erosion in sloping vineyards assessed by using botanical indicators and sediment collectors in the Ruwer-Mosel valley
    Comino, J. Rodrigo
    Quiquerez, A.
    Follain, S.
    Raclot, D.
    Le Bissonnais, Y.
    Casali, J.
    Gimenez, R.
    Cerda, A.
    Keesstra, S. D.
    Brevik, E. C.
    Pereira, P.
    Senciales, J. M.
    Seeger, M.
    Sinoga, J. D. Ruiz
    Ries, J. B.
    [J]. AGRICULTURE ECOSYSTEMS & ENVIRONMENT, 2016, 233 : 158 - 170
  • [5] Soil organic carbon dynamics following natural vegetation restoration: Evidence from stable carbon isotopes (δ13C)
    Deng, Lei
    Wang, Kaibo
    Tang, Zhuangsheng
    Shangguan, Zhouping
    [J]. AGRICULTURE ECOSYSTEMS & ENVIRONMENT, 2016, 221 : 235 - 244
  • [6] Soil organic carbon dynamics under long-term fertilization in a black soil of China: Evidence from stable C isotopes
    Dou, Xiaolin
    He, Ping
    Zhu, Ping
    Zhou, Wei
    [J]. SCIENTIFIC REPORTS, 2016, 6
  • [7] AGGREGATE STRUCTURE AND CARBON, NITROGEN, AND PHOSPHORUS IN NATIVE AND CULTIVATED SOILS
    ELLIOTT, ET
    [J]. SOIL SCIENCE SOCIETY OF AMERICA JOURNAL, 1986, 50 (03) : 627 - 633
  • [8] Fan J., 2016, J HENAN FORESTRY SCI, V36, P30
  • [9] Ghidey F, 1997, T ASAE, V40, P129, DOI 10.13031/2013.21257
  • [10] Impact of conservation practices on soil aggregation and the carbon management index after seven years of maize-wheat cropping system in the Indian Himalayas
    Ghosh, B. N.
    Meena, V. S.
    Alam, N. M.
    Dogra, Pradeep
    Bhattacharyya, Ranjan
    Sharma, N. K.
    Mishra, P. K.
    [J]. AGRICULTURE ECOSYSTEMS & ENVIRONMENT, 2016, 216 : 247 - 257