Cargando…

Distribution and mixing of old and new nonstructural carbon in two temperate trees

We know surprisingly little about whole-tree nonstructural carbon (NSC; primarily sugars and starch) budgets. Even less well understood is the mixing between recent photosynthetic assimilates (new NSC) and previously stored reserves. And, NSC turnover times are poorly constrained. . We characterized...

Descripción completa

Detalles Bibliográficos
Autores principales: Richardson, Andrew D, Carbone, Mariah S, Huggett, Brett A, Furze, Morgan E, Czimczik, Claudia I, Walker, Jennifer C, Xu, Xiaomei, Schaberg, Paul G, Murakami, Paula
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BlackWell Publishing Ltd 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4405048/
https://www.ncbi.nlm.nih.gov/pubmed/25558814
http://dx.doi.org/10.1111/nph.13273
_version_ 1782367591576109056
author Richardson, Andrew D
Carbone, Mariah S
Huggett, Brett A
Furze, Morgan E
Czimczik, Claudia I
Walker, Jennifer C
Xu, Xiaomei
Schaberg, Paul G
Murakami, Paula
author_facet Richardson, Andrew D
Carbone, Mariah S
Huggett, Brett A
Furze, Morgan E
Czimczik, Claudia I
Walker, Jennifer C
Xu, Xiaomei
Schaberg, Paul G
Murakami, Paula
author_sort Richardson, Andrew D
collection PubMed
description We know surprisingly little about whole-tree nonstructural carbon (NSC; primarily sugars and starch) budgets. Even less well understood is the mixing between recent photosynthetic assimilates (new NSC) and previously stored reserves. And, NSC turnover times are poorly constrained. . We characterized the distribution of NSC in the stemwood, branches, and roots of two temperate trees, and we used the continuous label offered by the radiocarbon (carbon-14, (14)C) bomb spike to estimate the mean age of NSC in different tissues. . NSC in branches and the outermost stemwood growth rings had the (14)C signature of the current growing season. However, NSC in older aboveground and belowground tissues was enriched in (14)C, indicating that it was produced from older assimilates. Radial patterns of (14)C in stemwood NSC showed strong mixing of NSC across the youngest growth rings, with limited ‘mixing in’ of younger NSC to older rings. . Sugars in the outermost five growth rings, accounting for two-thirds of the stemwood pool, had a mean age < 1 yr, whereas sugars in older growth rings had a mean age > 5 yr. Our results are thus consistent with a previously-hypothesized two-pool (‘fast’ and ‘slow’ cycling NSC) model structure. These pools appear to be physically distinct. ;
format Online
Article
Text
id pubmed-4405048
institution National Center for Biotechnology Information
language English
publishDate 2015
publisher BlackWell Publishing Ltd
record_format MEDLINE/PubMed
spelling pubmed-44050482015-04-22 Distribution and mixing of old and new nonstructural carbon in two temperate trees Richardson, Andrew D Carbone, Mariah S Huggett, Brett A Furze, Morgan E Czimczik, Claudia I Walker, Jennifer C Xu, Xiaomei Schaberg, Paul G Murakami, Paula New Phytol Research We know surprisingly little about whole-tree nonstructural carbon (NSC; primarily sugars and starch) budgets. Even less well understood is the mixing between recent photosynthetic assimilates (new NSC) and previously stored reserves. And, NSC turnover times are poorly constrained. . We characterized the distribution of NSC in the stemwood, branches, and roots of two temperate trees, and we used the continuous label offered by the radiocarbon (carbon-14, (14)C) bomb spike to estimate the mean age of NSC in different tissues. . NSC in branches and the outermost stemwood growth rings had the (14)C signature of the current growing season. However, NSC in older aboveground and belowground tissues was enriched in (14)C, indicating that it was produced from older assimilates. Radial patterns of (14)C in stemwood NSC showed strong mixing of NSC across the youngest growth rings, with limited ‘mixing in’ of younger NSC to older rings. . Sugars in the outermost five growth rings, accounting for two-thirds of the stemwood pool, had a mean age < 1 yr, whereas sugars in older growth rings had a mean age > 5 yr. Our results are thus consistent with a previously-hypothesized two-pool (‘fast’ and ‘slow’ cycling NSC) model structure. These pools appear to be physically distinct. ; BlackWell Publishing Ltd 2015-04 2015-01-05 /pmc/articles/PMC4405048/ /pubmed/25558814 http://dx.doi.org/10.1111/nph.13273 Text en © 2015 The Authors. New Phytologist © 2015 New Phytologist Trust http://creativecommons.org/licenses/by/4.0/ This is an open access article under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research
Richardson, Andrew D
Carbone, Mariah S
Huggett, Brett A
Furze, Morgan E
Czimczik, Claudia I
Walker, Jennifer C
Xu, Xiaomei
Schaberg, Paul G
Murakami, Paula
Distribution and mixing of old and new nonstructural carbon in two temperate trees
title Distribution and mixing of old and new nonstructural carbon in two temperate trees
title_full Distribution and mixing of old and new nonstructural carbon in two temperate trees
title_fullStr Distribution and mixing of old and new nonstructural carbon in two temperate trees
title_full_unstemmed Distribution and mixing of old and new nonstructural carbon in two temperate trees
title_short Distribution and mixing of old and new nonstructural carbon in two temperate trees
title_sort distribution and mixing of old and new nonstructural carbon in two temperate trees
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4405048/
https://www.ncbi.nlm.nih.gov/pubmed/25558814
http://dx.doi.org/10.1111/nph.13273
work_keys_str_mv AT richardsonandrewd distributionandmixingofoldandnewnonstructuralcarbonintwotemperatetrees
AT carbonemariahs distributionandmixingofoldandnewnonstructuralcarbonintwotemperatetrees
AT huggettbretta distributionandmixingofoldandnewnonstructuralcarbonintwotemperatetrees
AT furzemorgane distributionandmixingofoldandnewnonstructuralcarbonintwotemperatetrees
AT czimczikclaudiai distributionandmixingofoldandnewnonstructuralcarbonintwotemperatetrees
AT walkerjenniferc distributionandmixingofoldandnewnonstructuralcarbonintwotemperatetrees
AT xuxiaomei distributionandmixingofoldandnewnonstructuralcarbonintwotemperatetrees
AT schabergpaulg distributionandmixingofoldandnewnonstructuralcarbonintwotemperatetrees
AT murakamipaula distributionandmixingofoldandnewnonstructuralcarbonintwotemperatetrees