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The relative importance of exogenous and substrate‐derived nitrogen for microbial growth during leaf decomposition

B. M. Cheever; J. R. Webster; E. E. Bilger; S. A. Thomas
Ecology · Vol. 94, Issue 7 · pp. 1614-1625 · 2013

Abstract

Heterotrophic microbes colonizing detritus obtain nitrogen (N) for growth by assimilating N from their substrate or immobilizing exogenous inorganic N. Microbial use of these two pools has different implications for N cycling and organic matter decomposition in the face of the global increase in biologically available N. We used sugar maple leaves labeled with 15 N to differentiate between microbial N that had been assimilated from the leaf substrate (enriched with 15 N) or immobilized from the water (natural abundance 15 N: 14 N) in five Appalachian streams ranging in ambient NO 3 ‐N concentrations from about 5 to 900 μg NO 3 ‐N/L. Ambient NO 3 − concentration increased sugar maple decomposition rate but did not influence the proportion of microbial N derived from substrate or exogenous pools. Instead, these proportions were strongly influenced by the percentage of detrital ash‐free dry mass (AFDM) remaining. Substrate‐derived N made up a large proportion of the microbial N after the first 24 h in all streams. Detrital and microbial isotopic 15 N signatures approached that of the water as decomposition progressed in all streams, suggesting that exogenous N may be the predominant source of N for meeting microbial requirements even when exogenous N concentrations are low. Our results support predictions of more rapid decomposition of organic matter in response to increased N availability and highlight the tight coupling of processes driving microbial N cycling and organic matter decomposition.

Bibliographic Information

JournalEcology
PublisherWiley
Publication Date2013-07-01
Publication Year2013
Volume94
Issue7
Pages1614-1625
Document TypeJournal Article
Print ISSN0012-9658
eISSN1939-9170
DOI10.1890/12-1339.1
SubjectEcology & Organismal Biology

Access Information

NARA Access Coverage1997-01-01~Current
Journal Homepagehttps://esajournals.onlinelibrary.wiley.com/loi/19399170
Publisher PageOpen Publisher Page
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