Land use effects on gross soil nitrogen transformations in karst desertification area

被引:19
作者
Yang, Hui [1 ,2 ]
Garousi, Farzaneh [1 ,2 ]
Wang, Jun [3 ]
Cao, Jianhua [1 ,2 ]
Xu, Xingliang [4 ]
Zhu, Tongbin [1 ,2 ]
Mueller, Christoph [5 ,6 ,7 ]
机构
[1] CAGS, Inst Karst Geol, Karst Dynam Lab, Mlr Guangxi 541004, Guilin, Peoples R China
[2] Int Res Ctr Karst, Auspices UNESCO, Guilin 541004, Peoples R China
[3] Baise Univ, Guangxi Baise 533000, Baise, Peoples R China
[4] Chinese Acad Sci, Inst Geog Sci & Nat Resources, Key Lab Ecosyst Network Observat & Modeling, Beijing 100101, Peoples R China
[5] Justus Liebig Univ Giessen, Inst Plant Ecol, Heinrich Buff Ring 26, D-35392 Giessen, Germany
[6] Univ Coll Dublin, Sch Biol & Environm Sci, Dublin 4, Ireland
[7] Univ Coll Dublin, Earth Inst, Dublin 4, Ireland
基金
中国国家自然科学基金;
关键词
Karst rocky desertification; Land use; (15) N-tracer; Gross N transformation; Inorganic N supply; AMMONIA-OXIDIZING ARCHAEA; ORGANIC-MATTER; HETEROTROPHIC NITRIFICATION; TERRESTRIAL ECOSYSTEMS; RETENTION CAPACITY; CALCAREOUS SOIL; FOREST SOILS; INORGANIC N; MINERALIZATION; CARBON;
D O I
10.1007/s11104-021-05021-9
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
Purpose Investigating soil nitrogen (N) cycling to evaluate inorganic N supply can guide land resource utilization. In this study, four typical land uses including grassland, Eucalyptus, corn, and pitaya plantations were chosen in a karst desertification area, all of which are the main plants in the local area. The corn and pitaya plantations experienced greater human disturbance than the grassland and Eucalyptus plantations; the latter two were not fertilized and tilled. We explored how land use change affects the gross N transformation rates and inorganic N supply in karst soils. Methods Soils were sampled from four land uses, and a (15) N-tracer incubation experiment containing two (15) N treatments ((NH4NO3)-N-15 and (NH4NO3)-N-15 at 10 atom% (15) N excess) was conducted at 25 degrees C under 60% water-holding capacity. Gross N transformation rates in the soils were qualified by a N cycle model (Muller et al., Soil Biol Biochem 39:715-726, 2007). Results Compared to grassland, pitaya cultivation did not affect heterotrophic nitrification (O-Norg) but increased the rates of the mineralization of organic N to NH4+ (M-Norg), NH4+ oxidation to NO3- (O-NH4), and microbial NO3- immobilization (I-NO3), resulting in increased inorganic N supply and turnover. By contrast, corn cultivation lowered the inorganic N supply by inhibiting M-Norg and O-NH4 rates, while increasing O-Norg. Compared to corn and pitaya plantations, the Eucalyptus plantation further lowered the inorganic N supply by inhibiting O-NH4 rates while increasing the rates of I-NH4 and NH4+ adsorption on cation-exchange sites. Lower clay content, alkyl-C, aromatic-C, alkyl-C/O-alkyl-C, and aromaticity levels but higher O-alkyl-C and carbonyl-C levels were found in the grassland and pitaya soils than the Eucalyptus and corn soils, indicating the clayey texture and low labile organic matter in the latter two soils. The rates of M-Norg, O-NH4, and I-NO3 were significantly negatively related to the soil clay content, alkyl-C/O-alkyl-C and aromaticity, suggesting that soil texture and the stability of organic matter were the important factors affecting inorganic N supply. Conclusions These results highlight the significant effect of land uses on N transformation rates. Compared to natural grassland, cash crop plantations such as pitaya can increase inorganic N supply capacity, while Eucalyptus and corn plantations reduce it, in karst rocky desertification areas. Our results indicate that the application of active organic fertilizer to agricultural plantations may be an effective practice for increasing labile organic C and improving the soil structure to accelerate N cycling and inorganic N supply.
引用
收藏
页码:61 / 77
页数:17
相关论文
共 86 条
  • [31] Rocky desertification in Southwest China: Impacts, causes, and restoration
    Jiang, Zhongcheng
    Lian, Yanqing
    Qin, Xiaoqun
    [J]. EARTH-SCIENCE REVIEWS, 2014, 132 : 1 - 12
  • [32] EFFECT OF REFORESTATION ON TURNOVER OF N-15 LABELED NITRATE AND AMMONIUM IN RELATION TO CHANGES IN SOIL MICROFLORA
    JONES, JM
    RICHARDS, BN
    [J]. SOIL BIOLOGY & BIOCHEMISTRY, 1977, 9 (06) : 383 - 392
  • [33] The macromolecular organic composition of plant and microbial residues as inputs to soil organic matter
    Kögel-Knabner, I
    [J]. SOIL BIOLOGY & BIOCHEMISTRY, 2002, 34 (02) : 139 - 162
  • [34] Kuo S., 1996, Methods of soil analysis. Part 3 - chemical methods., P869
  • [35] Land-use type and temperature affect gross nitrogen transformation rates in Chinese and Canadian soils
    Lang, Man
    Cai, Zu-Cong
    Mary, Bruno
    Hao, Xiying
    Chang, Scott X.
    [J]. PLANT AND SOIL, 2010, 334 (1-2) : 377 - 389
  • [36] Nitrogen limitation of net primary productivity in terrestrial ecosystems is globally distributed
    LeBauer, David S.
    Treseder, Kathleen K.
    [J]. ECOLOGY, 2008, 89 (02) : 371 - 379
  • [37] Nitrogen functional gene activity in soil profiles under progressive vegetative recovery after abandonment of agriculture at the Puding Karst Critical Zone Observatory, SW China
    Li, Dandan
    Zhang, Xinyu
    Green, Sophie M.
    Dungait, Jennifer A. J.
    Wen, Xuefa
    Tang, Yuqian
    Guo, Zhiming
    Yang, Yang
    Sun, Xiaomin
    Quine, Timothy A.
    [J]. SOIL BIOLOGY & BIOCHEMISTRY, 2018, 125 : 93 - 102
  • [38] Changes in soil nitrogen stocks following vegetation restoration in a typical karst catchment
    Liu, Xin
    Zhang, Wei
    Wu, Min
    Ye, Yingying
    Wang, Kelin
    Li, Dejun
    [J]. LAND DEGRADATION & DEVELOPMENT, 2019, 30 (01) : 60 - 72
  • [39] Organic farming enhances soil microbial abundance and activity-A meta-analysis and meta-regression
    Lori, Martina
    Symnaczik, Sarah
    Maeder, Paul
    De Deyn, Gerlinde
    Gattinger, Andreas
    [J]. PLOS ONE, 2017, 12 (07):
  • [40] Soil particulate organic matter effects on nitrogen availability after afforestation with Eucalyptus globulus
    Mendham, DS
    Heagney, EC
    Corbeels, M
    O'Connell, AM
    Grove, TS
    McMurtrie, RE
    [J]. SOIL BIOLOGY & BIOCHEMISTRY, 2004, 36 (07) : 1067 - 1074