期刊文献+

Nitrogen availability regulates deep soil priming effect by changing microbial metabolic efficiency in a subtropical forest 被引量:3

下载PDF
导出
摘要 In terrestrial ecosystems,deep soils(below 30 cm)are major organic carbon(C)pools.The labile carbon input could alter soil organic carbon(SOC)mineralization,resulting in priming effect(PE),which could be modified by nitrogen(N)availability,however,the underlying mechanism is unclear for deep soils,which complicates the prediction of deep soil C cycling in response to N deposition.A series of N applications with ^(13)C labeled glucose was set to investigate the effect of labile C and N on deep SOC mineralization.Microbial biomass,functional community,metabolic efficiency and enzyme activities were examined for their effects on SOC mineralization and PE.During incubation,glucose addition promoted SOC mineralization,resulting in positive PE.The magnitude of PE decreased significantly with increasing N.The N-regulated PE was not dependent on extracellular enzyme activities but was positively correlated with carbon use efficiency and negatively with metabolic quotient.Higher N levels resulted in higher microbial biomass and SOC-derived microbial biomass than lower N levels.These results suggest that the decline in the PE under high N availability was mainly controlled by higher microbial metabolic efficiency which allocated more C for growth.Structural equation modelling also revealed that microbial metabolic efficiency rather than enzyme activities was the main factor regulating the PE.The negative effect of additional N suggests that future N deposition could promote soil C sequestration.
出处 《Journal of Forestry Research》 SCIE CAS CSCD 2021年第2期713-723,共11页 林业研究(英文版)
基金 supported by the Natural Science Foundation of China(Grant numbers 31870465,31600377,31700462).
  • 相关文献

参考文献1

二级参考文献41

  • 1Whittaker RH (1956) Vegetation of the great smoky mountains. Ecol Monogr 26:1-80.
  • 2Hutchinson GE (1961) The paradox of the plankton. Am Nat 95:137-145.
  • 3Gunatilleke CVS, Gunatilleke IAUN, Esufali Set al (2006) Species-habitat associations in a Sri Lankan dipterocarp forest. J Trop Ecol 22:371-384.
  • 4Valencia R, Foster RB, Villa Get al (2004) Tree species distri- butions and local habitat variation in the amazon: large forest plot in eastern ecuador. J Ecol 92:214-229.
  • 5Lai J, Mi X, Ran H et al (2009) Species-habitat associations change in a subtropical forest of China. J Veg Sci 20:415-423.
  • 6Hubbell SP (2001) The unified neutral theory of biodiversity and biogeography. Princeton University Press, Princeton.
  • 7Gravel D, Canham CD, Beaudet Met al (2006) Reconciling niche and neutrality: the continuum hypothesis. Ecol Lett 9:399-409.
  • 8Bell G, Lechowicz MJ, Appenzeller A et al (1993) The spatial structure of the physical environment. Oecologia 96:114-121.
  • 9Legendre P, Mi X, Ren H et al (2009) Partitioning beta diversity in a subtropical broad-leaved forest of China. Ecology 90:663-674.
  • 10Punchi-Manage R, Wiegand T, Wiegand K et al (2013) Effect of spatial processes and topography on structuring species assem- blages in a Sri Lankan dipterocarp forest. Ecology 95:376-386.

共引文献15

同被引文献34

引证文献3

二级引证文献5

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部