An incubation method to determine the age of available nonstructural carbon in woody plant tissues

Author:

Peltier Drew M P12ORCID,Lemoine Jim1,Ebert Chris1,Xu Xiaomei3,Ogle Kiona12,Richardson Andrew D12ORCID,Carbone Mariah S1

Affiliation:

1. Northern Arizona University Center for Ecosystem Science and Society, , Flagstaff, AZ 86011 , USA

2. School of Informatics, Computing, and Cyber Systems, Northern Arizona University , Flagstaff, AZ 86011 , USA

3. University of California Department of Earth System Science, , Irvine, CA 92617 , USA

Abstract

AbstractRadiocarbon (∆14C) measurements of nonstructural carbon enable inference on the age and turnover time of stored photosynthate (e.g., sugars, starch), of which the largest pool in trees resides in the main bole. Because of potential issues with extraction-based methods, we introduce an incubation method to capture the ∆14C of nonstructural carbon via respired CO2. In this study, we compared the ∆14C obtained from these incubations with ∆14C from a well-established extraction method, using increment cores from a mature trembling aspen (Populus tremuloides Michx). To understand any potential ∆14C disagreement, the yields from both methods were also benchmarked against the phenol-sulfuric acid concentration assay. We found incubations captured less than 100% of measured sugar and starch carbon, with recovery ranging from ~ 3% in heartwood to 85% in shallow sapwood. However, extractions universally over-yielded (mean 273 ± 101% expected sugar carbon; as high as 480%), where sugars represented less than half of extracted soluble carbon, indicating very poor specificity. Although the separation of soluble and insoluble nonstructural carbon is ostensibly a strength of extraction-based methods, there was also evidence of poor separation of these two fractions in extractions. The ∆14C of respired CO2 and ∆14C from extractions were similar in the sapwood, whereas extractions resulted in comparatively higher ∆14C (older carbon) in heartwood and bark. Because yield and ∆14C discrepancies were largest in old tissues, incubations may better capture the ∆14C of nonstructural carbon that is actually metabolically available. That is, we suggest extractions include metabolically irrelevant carbon from dead tissues or cells, as well as carbon that is neither sugar nor starch. In contrast, nonstructural carbon captured by extractions must be respired to be measured. We thus suggest incubations of live tissues are a potentially viable, inexpensive and versatile method to study the ∆14C of metabolically relevant (available) nonstructural carbon.

Funder

NSF-DEB

NSF-IOS-RAPID

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Physiology

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