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  <rdf:Description rdf:about="https://doi.org/10.1046/j.1469-8137.2003.00911.x">
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    <dct:isPartOf>New Phytologist</dct:isPartOf>
    <dct:license>Open Access</dct:license>
    <dct:created>2003-11-17</dct:created>
    <dc:description>&#8226;&#8194; The loss of carbon below-ground through respiration of fine roots may be modified by global change. Here we tested the hypothesis that a reduction in N concentration of tree fine-roots grown in an elevated atmospheric CO2 concentration would reduce maintenance respiration and that more energy would be used for root growth and N uptake. We partitioned total fine-root respiration (RT ) between maintenance (RM ), growth (RG ), and N uptake respiration (RN ) for loblolly pine (Pinus taeda) and sweetgum (Liquidambar styraciflua) forests exposed to elevated CO2 . &#8226;&#8194; A substantial increase in fine-root production contributed to a 151% increase in RG for loblolly pine in elevated CO2 . Root specific RM for pine was 24% lower under elevated CO2 but when extrapolated to the entire forest, no treatment effect could be detected. &#8226;&#8194; R G (&lt;&#160;10%) and RN (&lt;&#160;3%) were small components of RM in both forests. Maintenance respiration was the vast majority of RT , and contributed 92% and 86% of these totals at the pine and sweetgum forests, respectively. &#8226;&#8194; The hypothesis was rejected because the majority of fine-root respiration was used for maintenance and was not reduced by changes in root N concentration in elevated CO2 . Because of its large contribution to RT and total soil CO2 efflux, changes in RM caused by warming may greatly alter carbon losses from forests to the atmosphere.</dc:description>
    <dc:subject>0106 biological sciences</dc:subject>
    <dc:subject>Temperate forest</dc:subject>
    <dc:subject>Sweetgum (Liquidambar styeaciflua)</dc:subject>
    <dc:subject>Growth respiration</dc:subject>
    <dc:subject>Loblolly pine (Pinus taeda)</dc:subject>
    <dc:subject>Maintenance respiration</dc:subject>
    <dc:subject>Nitrogen uptake respiration</dc:subject>
    <dc:subject>15. Life on land</dc:subject>
    <dc:subject>Free-air CO enrichment (FACE) 2</dc:subject>
    <dc:subject>01 natural sciences</dc:subject>
    <dc:subject>Annual fine-root respiration</dc:subject>
    <dc:creator rdf:resource="https://orcid.org/0000-0002-0238-9828"/>
    <dc:creator>Jason G. Hamilton, K. George, K. George, Evan H. DeLucia, Richard J. Norby, </dc:creator>
    <dc:date>2003-11-17</dc:date>
    <dc:type>journalpaper</dc:type>
    <dct:abstract>&#8226;&#8194; The loss of carbon below-ground through respiration of fine roots may be modified by global change. Here we tested the hypothesis that a reduction in N concentration of tree fine-roots grown in an elevated atmospheric CO2 concentration would reduce maintenance respiration and that more energy would be used for root growth and N uptake. We partitioned total fine-root respiration (RT ) between maintenance (RM ), growth (RG ), and N uptake respiration (RN ) for loblolly pine (Pinus taeda) and sweetgum (Liquidambar styraciflua) forests exposed to elevated CO2 . &#8226;&#8194; A substantial increase in fine-root production contributed to a 151% increase in RG for loblolly pine in elevated CO2 . Root specific RM for pine was 24% lower under elevated CO2 but when extrapolated to the entire forest, no treatment effect could be detected. &#8226;&#8194; R G (&lt;&#160;10%) and RN (&lt;&#160;3%) were small components of RM in both forests. Maintenance respiration was the vast majority of RT , and contributed 92% and 86% of these totals at the pine and sweetgum forests, respectively. &#8226;&#8194; The hypothesis was rejected because the majority of fine-root respiration was used for maintenance and was not reduced by changes in root N concentration in elevated CO2 . Because of its large contribution to RT and total soil CO2 efflux, changes in RM caused by warming may greatly alter carbon losses from forests to the atmosphere.</dct:abstract>
    <dc:title>Fine-Root Respiration In A Loblolly Pine And Sweetgum Forest Growing In Elevated Co2</dc:title>
    <dc:identifier>10.1046/j.1469-8137.2003.00911.x</dc:identifier>
    <dct:references>https://doi.org/10.1046/j.1469-8137.2003.00911.x</dct:references>
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