Record Details

Rate of tree carbon accumulation increases continuously with tree size

ScholarsArchive at Oregon State University

Field Value
Title Rate of tree carbon accumulation increases continuously with tree size
Names Stephenson, N. L. (creator)
Das, A. J. (creator)
Condit, R. (creator)
Russo, S. E. (creator)
Baker, P. J. (creator)
Beckman, N. G. (creator)
Coomes, D. A. (creator)
Lines, E. R. (creator)
Morris, W. K. (creator)
Rueger, N. (creator)
Álvarez, E. (creator)
Blundo, C. (creator)
Bunyavejchewin, S. (creator)
Chuyong, G. (creator)
Davies, S. J. (creator)
Duque, Á. (creator)
Ewango, C. N. (creator)
Flores, O. (creator)
Franklin, J. F. (creator)
Grau, H. R. (creator)
Hao, Z. (creator)
Harmon, M. E. (creator)
Hubbell, S. P. (creator)
Kenfack, D. (creator)
Lin, Y. (creator)
Makana, J.-R. (creator)
Malizia, A. (creator)
Malizia, L. R. (creator)
Pabst, R. J. (creator)
Pongpattananurak, N. (creator)
Su, S.-H. (creator)
Sun, I-F. (creator)
Tan, S. (creator)
Thomas, D. (creator)
van Mantgem, P. J. (creator)
Wang, X. (creator)
Wiser, S. K. (creator)
Zavala, M. A. (creator)
Date Issued 2014-03-06 (iso8601)
Note To the best of our knowledge, one or more authors of this paper were federal employees when contributing to this work. This is the publisher’s final pdf. The published article is copyrighted by Macmillan Publishers Limited and can be found at: http://www.nature.com/nature/index.html.
Abstract Forests are major components of the global carbon cycle, providing
substantial feedback to atmospheric greenhouse gas concentrations¹.
Our ability to understand and predict changes in the forest carbon
cycle—particularly net primary productivity and carbon storage—increasingly relies on models that represent biological processes
across several scales of biological organization, from tree leaves to
forest stands[superscript 2,3]. Yet, despite advances in our understanding of productivity
at the scales of leaves and stands, no consensus exists about
the nature of productivity at the scale of the individual tree[superscript 4–7], in
part because we lack a broad empirical assessment of whether rates
of absolute tree mass growth (and thus carbon accumulation) decrease,
remain constant, or increase as trees increase in size and age. Here we
present a global analysis of 403 tropical and temperate tree species,
showing that for most species mass growth rate increases continuously
with tree size. Thus, large, old trees do not act simply as senescent
carbon reservoirs but actively fix large amounts of carbon
compared to smaller trees; at the extreme, a single big tree can add
the same amount of carbon to the forest within a year as is contained
in an entire mid-sized tree. The apparent paradoxes of individual
tree growth increasing with tree size despite declining leaf-level[superscript 8–10]
and stand-level¹⁰ productivity can be explained, respectively, by
increases in a tree’s total leaf area that outpace declines in productivity
per unit of leaf area and, among other factors, age-related
reductions in population density. Our results resolve conflicting
assumptions about the nature of tree growth, inform efforts to understand
and model forest carbon dynamics, and have additional implications
for theories of resource allocation¹¹ and plant senescence¹².
Genre Article
Identifier Stephenson, N. L., Das, A. J., Condit, R., Russo, S. E., Baker, P. J., Beckman, N. G., ... & Zavala, M. A. (2014). Rate of tree carbon accumulation increases continuously with tree size. Nature, 507(7490), 90-93. doi:10.1038/nature12914

© Western Waters Digital Library - GWLA member projects - Designed by the J. Willard Marriott Library - Hosted by Oregon State University Libraries and Press