Soil acidification exerts a greater control on soil respiration than soil nitrogen availability in grasslands subjected to long-term nitrogen enrichment

被引:194
作者
Chen, Dima [1 ,2 ]
Li, Jianjun [1 ]
Lan, Zhichun [1 ]
Hu, Shuijin [2 ]
Bai, Yongfei [1 ]
机构
[1] Chinese Acad Sci, Inst Bot, State Key Lab Vegetat & Environm Change, Beijing 100093, Peoples R China
[2] N Carolina State Univ, Dept Plant Pathol, Box 7616, Raleigh, NC 27695 USA
关键词
base mineral cations; below-ground carbon allocation; microbial respiration; plant functional group; root nitrogen content; root respiration; root specific respiration; soil microbial community; ROOT RESPIRATION; SUBTROPICAL PLANTATIONS; MICROBIAL COMMUNITIES; PLANT DIVERSITY; CARBON STORAGE; CO2; EFFLUX; DEPOSITION; ACID; PRODUCTIVITY; DECLINES;
D O I
10.1111/1365-2435.12525
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
Terrestrial ecosystems worldwide are receiving increasing amounts of biologically reactive nitrogen (N) as a consequence of anthropogenic activities. This intended or unintended fertilization can have a wide-range of impacts on biotic communities and hence on soil respiration. Reduction in below-ground carbon (C) allocation induced by high N availability has been assumed to be a major mechanism determining the effects of N enrichment on soil respiration. In addition to increasing available N, however, N enrichment causes soil acidification, which may also affect root and microbial activities. The relative importance of increased N availability vs. soil acidification on soil respiration in natural ecosystems experiencing N enrichment is unclear. We conducted a 12-year N enrichment experiment and a 4-year complementary acid addition experiment in a semi-arid Inner Mongolian grassland. We found that N enrichment had contrasting effects on root and microbial respiration. N enrichment significantly increased root biomass, root N content and specific root respiration, thereby promoting root respiration. In contrast, N enrichment significantly suppressed microbial respiration likely by reducing total microbial biomass and changing the microbial community composition. The effect on root activities was due to both soil acidity and increased available N, while the effect on microbes primarily stemmed from soil acidity, which was further confirmed by results from the acid addition experiment. Our results indicate that soil acidification exerts a greater control than soil N availability on soil respiration in grasslands experiencing long-term N enrichment. These findings suggest that N-induced soil acidification should be included in predicting terrestrial ecosystem C balance under future N deposition scenarios.
引用
收藏
页码:658 / 669
页数:12
相关论文
共 50 条
  • [41] Long-term nitrogen addition has a positive legacy effect on soil respiration in subtropical Moso bamboo forests
    Li, Quan
    Zhang, Chao
    Shi, Man
    Lv, Jianhua
    Peng, Changhui
    Zhang, Junbo
    Chang, Scott X.
    Cao, Tingting
    Li, Tong
    Song, Xinzhang
    GEODERMA, 2024, 452
  • [42] Long-term nitrogen addition reduced soil respiration contributed by decline in the understory plant cover but not species richness
    Xing, Aijun
    Shen, Haihua
    Zhao, Mengying
    Fang, Jingyun
    PLANT AND SOIL, 2023, 492 (1-2) : 125 - 134
  • [43] Long-Term Changes in Organic Matter Content and Soil Moisture Determine the Degree of Root and Soil Respiration
    Kotroczo, Zsolt
    Makadi, Marianna
    Kocsis, Tamas
    Beni, Aron
    Varbiro, Gabor
    Fekete, Istvan
    PLANTS-BASEL, 2023, 12 (02):
  • [44] Soil biochemical parameters in the rhizosphere contribute more to changes in soil respiration and its components than those in the bulk soil under nitrogen application in croplands
    Liang, Guopeng
    Cai, Andong
    Wu, Huijun
    Wu, Xueping
    Houssou, Albert A.
    Ren, Chengjie
    Wang, Ziting
    Gao, Lili
    Wang, Bisheng
    Li, Shengping
    Song, Xiaojun
    Cai, Dianxiong
    PLANT AND SOIL, 2019, 435 (1-2) : 111 - 125
  • [45] The effect of long-term CO2 enrichment on carbon and nitrogen content of roots and soil of natural pastureland
    Al-Traboulsi, Manal
    Wilsey, Brian
    Potvin, Catherine
    FOLIA OECOLOGICA, 2021, 48 (02) : 180 - 190
  • [46] Long-term nitrogen and phosphorus enrichment alters vegetation species composition and reduces carbon storage in upland soil
    Stiles, William A. V.
    Rowe, Edwin C.
    Dennis, Peter
    SCIENCE OF THE TOTAL ENVIRONMENT, 2017, 593 : 688 - 694
  • [47] Long-term nitrogen addition and precipitation reduction decrease soil nematode community diversity in a temperate forest
    Wang, Honglin
    Liu, Guancheng
    Huang, Binbin
    Wang, Xiaochun
    Xing, Yajuan
    Wang, Qinggui
    APPLIED SOIL ECOLOGY, 2021, 162
  • [48] The Effects of Localized Plant-Soil-Microbe Interactions on Soil Nitrogen Cycle in Maize Rhizosphere Soil under Long-Term Fertilizers
    Li, Yanan
    Wang, Chengyu
    Wu, Junnan
    Zhang, Yumang
    Li, Qi
    Liu, Shuxia
    Gao, Yunhang
    AGRONOMY-BASEL, 2023, 13 (08):
  • [49] Long-Term Nitrogen Addition Leads to Loss of Species Richness Due to Litter Accumulation and Soil Acidification in a Temperate Steppe
    Fang, Ying
    Xun, Fen
    Bai, Wenming
    Zhang, Wenhao
    Li, Linghao
    PLOS ONE, 2012, 7 (10):
  • [50] After-effect of long-term soil management on soil respiration and other qualitative parameters under prolonged dry soil conditions
    Feiziene, Dalia
    Janusauskaite, Dalia
    Feiza, Virginijus
    Putramentaite, Agne
    Sinkeviciene, Ausra
    Suproniene, Skaidre
    Seibutis, Vytautas
    Kadziene, Grazina
    Deveikyte, Irena
    Lazauskas, Sigitas
    Janusauskaite, Daiva
    Povilaitis, Virmantas
    TURKISH JOURNAL OF AGRICULTURE AND FORESTRY, 2015, 39 (05) : 633 - 651