Temporal separation between CO2 assimilation and growth? Experimental and theoretical evidence from the desiccation-tolerant moss Syntrichia ruralis
Royles, Jessica ORCID: https://orcid.org/0000-0003-0489-6863; Ogée, Jérôme; Wingate, Lisa; Hodgson, Dominic A. ORCID: https://orcid.org/0000-0002-3841-3746; Convey, Peter ORCID: https://orcid.org/0000-0001-8497-9903; Griffiths, Howard. 2013 Temporal separation between CO2 assimilation and growth? Experimental and theoretical evidence from the desiccation-tolerant moss Syntrichia ruralis. New Phytologist, 197 (4). 1152-1160. 10.1111/nph.12114
Full text not available from this repository. (Request a copy)Abstract/Summary
The extent of an external water layer around moss tissue influences CO2 assimilation. Experiments on the desiccation-tolerant moss Syntrichia ruralis assessed the real-time dependence of the carbon and oxygen isotopic compositions of CO2 and H2O in terms of moss water status and integrated isotope signals in cellulose. As external (capillary) water, and then mesophyll water, evaporated from moss tissue, assimilation rate, relative water content and the stable isotope composition of tissue water (δ18OTW), and the CO2 and H2O fluxes, were analysed. After drying, carbon (δ13CC) and oxygen (δ18OC) cellulose compositions were determined. During desiccation, assimilation and 13CO2 discrimination increased to a maximum and then declined; δ18OTW increased progressively by 8‰, indicative of evaporative isotopic enrichment. Experimental and meteorological data were combined to predict tissue hydration dynamics over one growing season. Nonsteady-state model predictions of δ18OTW were consistent with instantaneous measurements. δ13CC values suggest that net assimilation occurs at 25% of maximum relative water content, while δ18OC data suggests that cellulose is synthesized during much higher relative water content conditions. This implies that carbon assimilation and cellulose synthesis (growth) may be temporally separated, with carbon reserves possibly contributing to desiccation tolerance and resumption of metabolism upon rehydration.
Item Type: | Publication - Article |
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Digital Object Identifier (DOI): | 10.1111/nph.12114 |
Programmes: | BAS Programmes > Polar Science for Planet Earth (2009 - ) > Chemistry and Past Climate BAS Programmes > Polar Science for Planet Earth (2009 - ) > Ecosystems |
ISSN: | 0028646X |
Additional Keywords: | carbon-13, descrimination, moss oxygen-18, photsynthesis, relative water content, Syntrichia ruralis |
Date made live: | 03 Apr 2013 12:45 +0 (UTC) |
URI: | https://nora.nerc.ac.uk/id/eprint/500818 |
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