Repository logo
Log In(current)
  1. Home
  2. Works by Faculty
  3. Faculty Scholarship and Open Access Collection
  4. Sources of plant‐derived carbon and stability of organic matter in soil: implications for global change
Details

Sources of plant‐derived carbon and stability of organic matter in soil: implications for global change

Persistent URL
http://hdl.handle.net/10456/46629
Author(s)
Crow, Susan E.
Lajtha, Kate
Filley, Timothy R.
Swanston, Christopher
Bowden, Richard D.
Caldwell, Bruce E.
Date Issued
July 2009
Abstract
Alterations in forest productivity and changes in the relative proportion of above‐ and belowground biomass may have nonlinear effects on soil organic matter (SOM) storage. To study the influence of plant litter inputs on SOM accumulation, the Detritus Input Removal and Transfer (DIRT) Experiment continuously alters above‐ and belowground plant inputs to soil by a combination of trenching, screening, and litter addition. Here, we used biogeochemical indicators [i.e., cupric oxide extractable lignin‐derived phenols and suberin/cutin‐derived substituted fatty acids (SFA)] to identify the dominant sources of plant biopolymers in SOM and various measures [i.e., soil density fractionation, laboratory incubation, and radiocarbon‐based mean residence time (MRT)] to assess the stability of SOM in two contrasting forests within the DIRT Experiment: an aggrading deciduous forest and an old‐growth coniferous forest. In the deciduous forest, removal of both above‐ and belowground inputs increased the total amount of SFA over threefold compared with the control, and shifted the SFA signature towards a root‐dominated source. Concurrently, light fraction MRT increased by 101 years and C mineralization during incubation decreased compared with the control. Together, these data suggest that root‐derived aliphatic compounds are a source of SOM with greater relative stability than leaf inputs at this site. In the coniferous forest, roots were an important source of soil lignin‐derived phenols but needle‐derived, rather than root‐derived, aliphatic compounds were preferentially preserved in soil. Fresh wood additions elevated the amount of soil C recovered as light fraction material but also elevated mineralization during incubation compared with other DIRT treatments, suggesting that not all of the added soil C is directly stabilized. Aboveground needle litter additions, which are more N‐rich than wood debris, resulted in accelerated mineralization of previously stored soil carbon. In summary, our work demonstrates that the dominant plant sources of SOM differed substantially between forest types. Furthermore, inputs to and losses from soil C pools likely will not be altered uniformly by changes in litter input rates.
Journal
Global Change Biology
Department
Biology
Citation
Crow, S.E., Lajtha, K., Filley, T.R., et al. (2009). Sources of plant‐derived carbon and stability of organic matter in soil: implications for global change. Global Change Biology, 15(8): 2003-2019. doi: 10.1111/j.1365-2486.2009.01850.x
Publisher
Wiley Blackwell
Version of Article
Published article
Embargo
This article is not available to the general public. Please contact the reprint author or publisher for access to this article.
DOI
10.1111/j.1365-2486.2009.01850.x
ISSN
e1365-2486
Rights
This article is published by Wiley Blackwell in Global Change Biology (2009) Crow, et al. All rights reserved.
Subjects

carbon

coniferous forest

Cutin

Deciduous forest

lignin

net primary productiv...

Soil organic matter

suberin

File(s)
Thumbnail Image
Name

CROW_et_al-2009-Global_Change_Biology.pdf

Description
Main Document
Size

270.14 KB

Format

Adobe PDF

Checksum (etag)

d00bed1965f8857b215168ce0c22e070

Thumbnail Image
Name

Bowden_2009_GCB_Cover.pdf

Description
cover
Size

455.37 KB

Format

Adobe PDF

Checksum (etag)

05d33e82679610e3cb9711e207b312f8

Allegheny Logo

814-332-4312

dspace-help@allegheny.edu

Built with DSpace-CRIS software - Extension maintained and optimized by 4Science

  • Accessibility settings
  • Privacy policy
  • End User Agreement
  • Send Feedback
Repository logo COAR Notify