Rethinking the potential productivity of crassulacean acid metabolism by integrating metabolic dynamics with shoot architecture, using the example of Agave tequilana

Wang, Yu and Smith, J. Andrew C. and Zhu, Xin‐Guang and Long, Stephen P. (2023) Rethinking the potential productivity of crassulacean acid metabolism by integrating metabolic dynamics with shoot architecture, using the example of Agave tequilana. New Phytologist, 239 (6). pp. 2180-2196. ISSN 0028-646X

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Abstract

Terrestrial CAM plants typically occur in hot semiarid regions, yet can show high crop productivity under favorable conditions. To achieve a more mechanistic understanding of CAM plant productivity, a biochemical model of diel metabolism was developed and integrated with 3-D shoot morphology to predict the energetics of light interception and photosynthetic carbon assimilation. Using Agave tequilana as an example, this biochemical model faithfully simulated the four diel phases of CO 2 and metabolite dynamics during the CAM rhythm. After capturing the 3-D form over an 8-yr production cycle, a ray-tracing method allowed the prediction of the light microclimate across all photosynthetic surfaces. Integration with the biochemical model thereby enabled the simulation of plant and stand carbon uptake over daily and annual courses. The theoretical maximum energy conversion efficiency of Agave spp. is calculated at 0.045–0.049, up to 7% higher than for C 3 photosynthesis. Actual light interception, and biochemical and anatomical limitations, reduced this to 0.0069, or 15.6 Mg ha −1 yr −1 dry mass annualized over an 8-yr cropping cycle, consistent with observation. This is comparable to the productivity of many C 3 crops, demonstrating the potential of CAM plants in climates where little else may be grown while indicating strategies that could raise their productivity.

Item Type:
Journal Article
Journal or Publication Title:
New Phytologist
Uncontrolled Keywords:
/dk/atira/pure/subjectarea/asjc/2700/2700
Subjects:
?? 3‐d plant formcrassulacean acid metabolismbioenergymetabolic modeldroughtfood securitycrassulacean acid metabolism (cam) photosynthesisphotosynthesisgeneral medicinemedicine(all) ??
ID Code:
200882
Deposited By:
Deposited On:
07 Aug 2023 08:40
Refereed?:
Yes
Published?:
Published
Last Modified:
11 Sep 2024 14:35