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Published on: February 9, 2024
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Comparing Methodologies for Stomatal Analyses in the Context of Elevated Modern CO2.
Rebekah A Stein1, Nathan D Sheldon2, Selena Y Smith2
1Department of Chemistry & Physical Sciences, Quinnipiac University, Hamden, CT 06518, USA.
Life (Basel, Switzerland)
|January 23, 2024
Summary
Reconstructing ancient carbon dioxide (CO2) levels using leaf stomata requires careful methodology. Stomatal impressions can lead to inaccurate measurements, suggesting cleared leaves are more reliable for paleo-CO2 studies.
Area of Science:
- Paleobotany
- Paleoclimatology
- Plant Physiology
Background:
- Leaf stomata regulate gas exchange (CO2 and water) and their morphology varies over geologic time.
- Stomatal traits are influenced by environmental factors, particularly atmospheric CO2 concentrations.
- Stomatal parameters are used to reconstruct past CO2 levels, often employing gas-exchange models and plant carbon isotope data.
Purpose of the Study:
- To compare two methodologies (corrosive and non-destructive) for preparing leaf samples for paleo-CO2 studies.
- To assess the comparability of stomatal parameter measurements between the two methods across different leaf types (scale-leaved and broad-leaved).
- To evaluate the impact of methodological differences on paleo-CO2 reconstructions using gas-exchange models.
Main Methods:
- Collected scale-leaved and broad-leaved specimens from herbaria with known atmospheric CO2 levels.
- Prepared leaf samples using a corrosive (clearing) method and a non-destructive (impression) method.
- Measured stomatal parameters, including stomatal density and guard cell width (GCW), for both preparation methods.
- Applied gas-exchange models to reconstruct past CO2 levels using the measured stomatal parameters.
Main Results:
- Stomatal density measurements were comparable between the corrosive and non-destructive methods.
- Stomatal size measurements, specifically guard cell width (GCW), were not comparable between the two methods.
- Reconstructed CO2 levels using stomatal impressions (due to inaccurate GCW) significantly exceeded measured CO2 for modern plants.
- This bias in CO2 reconstruction was observed in both coniferous and angiosperm leaves.
Conclusions:
- The non-destructive stomatal impression method yields inaccurate guard cell width measurements compared to the corrosive clearing method.
- Inaccurate stomatal size measurements from impressions introduce significant bias when reconstructing paleo-CO2 levels using gas-exchange models.
- For accurate paleo-CO2 reconstructions, it is recommended to use chemically cleared leaves rather than stomatal impressions.
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