Nitrogen-mediated effects of elevated CO2 on intra-aggregate soil pore structure

Joshua S. Caplan, Daniel Giménez, Vandana Subroy, Richard J. Heck, Stephen A. Prior, G. Brett Runion, H. Allen Torbert

Research output: Contribution to journalArticlepeer-review

11 Scopus citations

Abstract

Soil pore structure has a strong influence on water retention, and is itself influenced by plant and microbial dynamics such as root proliferation and microbial exudation. Although increased nitrogen (N) availability and elevated atmospheric CO2 concentrations (eCO2) often have interacting effects on root and microbial dynamics, it is unclear whether these biotic effects can translate into altered soil pore structure and water retention. This study was based on a long-term experiment (7 yr at the time of sampling) in which a C4 pasture grass (Paspalum notatum) was grown on a sandy loam soil while provided factorial additions of N and CO2. Through an analysis of soil aggregate fractal properties supported by 3D microtomographic imagery, we found that N fertilization induced an increase in intra-aggregate porosity and a simultaneous shift toward greater accumulation of pore space in larger aggregates. These effects were enhanced by eCO2 and yielded an increase in water retention at pressure potentials near the wilting point of plants. However, eCO2 alone induced changes in the opposite direction, with larger aggregates containing less pore space than under control conditions, and water retention decreasing accordingly. Results on biotic factors further suggested that organic matter gains or losses induced the observed structural changes. Based on our results, we postulate that the pore structure of many mineral soils could undergo N-dependent changes as atmospheric CO2 concentrations rise, having global-scale implications for water balance, carbon storage, and related rhizosphere functions.

Original languageEnglish (US)
Pages (from-to)1585-1597
Number of pages13
JournalGlobal Change Biology
Volume23
Issue number4
DOIs
StatePublished - Apr 1 2017

All Science Journal Classification (ASJC) codes

  • Global and Planetary Change
  • Environmental Chemistry
  • Ecology
  • Environmental Science(all)

Keywords

  • Paspalum notatum (bahiagrass)
  • X-ray computed microtomography
  • elevated carbon dioxide
  • fractal dimension of mass
  • intra-aggregate pores
  • nitrogen fertilization
  • soil structure
  • water retention

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