4.7 Article

Positive feedbacks between decomposition and soil nitrogen availability along fertility gradients

Journal

PLANT AND SOIL
Volume 367, Issue 1-2, Pages 347-361

Publisher

SPRINGER
DOI: 10.1007/s11104-012-1449-3

Keywords

Decomposition; Soil N availability; Soil fertility; Fire frequency gradient; Fertilization gradient; Fungal colonization

Funding

  1. National Science Foundation [DEB-0080382, DEB-0620652]
  2. SUNY Brockport Scholarly Incentive Award

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We determined the relationship between site N supply and decomposition rates with respect to controls exerted by environment, litter chemistry, and fungal colonization. Two reciprocal transplant decomposition experiments were established, one in each of two long-term experiments in oak woodlands in Minnesota, USA: a fire frequency/vegetation gradient, along which soil N availability varies markedly, and a long-term N fertilization experiment. Both experiments used native Quercus ellipsoidalis E.J. Hill and Andropogon gerardii Vitman leaf litter and either root litter or wooden dowels. Leaf litter decay rates generally increased with soil N availability in both experiments while belowground litter decayed more slowly with increasing soil N. Litter chemistry differed among litter types, and these differences had significant effects on belowground (but not aboveground) decay rates and on aboveground litter N dynamics during decomposition. Fungal colonization of detritus was positively correlated with soil fertility and decay rates. Higher soil fertility associated with low fire frequency was associated with greater leaf litter production, higher rates of fungal colonization of detritus, more rapid leaf litter decomposition rates, and greater N release in the root litter, all of which likely enhance soil fertility. During decomposition, both greater mass loss and litter N release provide mechanisms through which the plant and decomposer communities provide positive feedbacks to soil fertility as ultimately driven by decreasing fire frequency in N-limited soils and vice versa.

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