Canopy leaf area constrains [CO 2 ]-induced enhancement of productivity and partitioning among aboveground carbon pools
- 19 December 2006
- journal article
- research article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 103 (51) , 19356-19361
- https://doi.org/10.1073/pnas.0609448103
Abstract
Net primary productivity (NPP) is enhanced under future atmospheric [CO2] in temperate forests representing a broad range of productivity. Yet questions remain in regard to how elevated [CO2]-induced NPP enhancement may be affected by climatic variations and limiting nutrient resources, as well as how this additional production is distributed among carbon (C) pools of different longevities. Using 10 years of data from the Duke free-air CO2 enrichment (Duke FACE) site, we show that spatially, the major control of NPP was nitrogen (N) availability, through its control on canopy leaf area index (L). Elevated CO2 levels resulted in greater L, and thus greater NPP. After canopy closure had occurred, elevated [CO2] did not enhance NPP at a given L, regardless of soil water availability. Additionally, using published data from three other forest FACE sites and replacing L with leaf area duration (LD) to account for differences in growing season length, we show that aboveground NPP responded to [CO2] only through the enhancement of LD. For broadleaf forests, the fraction of aboveground NPP partitioned to wood biomass saturated with increasing LD and was not enhanced by [CO2], whereas it linearly decreased for the conifer forest but was enhanced by [CO2]. These results underscore the importance of resolving [CO2] effects on L to assess the response of NPP and C allocation. Further study is necessary to elucidate the mechanisms that control the differential allocation of C among aboveground pools in different forest types.Keywords
This publication has 49 references indexed in Scilit:
- Aboveground sink strength in forests controls the allocation of carbon below ground and its [CO2]-induced enhancementProceedings of the National Academy of Sciences, 2006
- Sensitivity of Ice Storms in the Southeastern United States to Atlantic SST—Insights from a Case Study of the December 2002 StormMonthly Weather Review, 2006
- Leaf dynamics of a deciduous forest canopy: no response to elevated CO 2Oecologia, 2003
- Relationship between throughfall and stand density in a Pinus taeda plantationPublished by Elsevier ,2003
- INTRA- AND INTER-ANNUAL VARIATION IN TRANSPIRATION OF A PINE FORESTEcological Applications, 2001
- WATER BALANCE DELINEATES THE SOIL LAYER IN WHICH MOISTURE AFFECTS CANOPY CONDUCTANCEEcological Applications, 1998
- Contrasting patterns of biomass allocation in dominant and suppressed loblolly pineCanadian Journal of Forest Research, 1998
- Foliar nutrient dynamics of 11-year-old loblolly pine (Pinustaeda) following nitrogen fertilizationCanadian Journal of Forest Research, 1996
- Can climate variability contribute to the “missing” CO2sink?Global Biogeochemical Cycles, 1993
- Leaf Area of Mature Northwestern Coniferous Forests: Relation to Site Water BalanceEcology, 1977