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Hupp, J.

Publications and source records attributed to Hupp, J..

2 recordsLinked to original sources

Techniques and challenges in studying photosynthetic diversity in freshwater aquatic vascular plants

While the photosynthetic diversity of aquatic plants rivals that of terrestrial species, the environmental conditions underlying that diversity fundamentally differ. Despite these environmental differences, aquatic and terrestrial plants have convergently evolved Carbon Concentrating Mechanisms (CCMs). However, characterization of these pathways in submerged plants has lagged behind terrestrial systems due to methodological constraints of the aquatic environment. Here we review and evaluate contemporary methods for detecting CCMs in aquatic plants. Physiological methods including gas exchange and isotopic analyses provide valuable insights in terrestrial plants but face significant challenges in aquatic systems. Biochemical assays of organic acid accumulation reliably detect CCMs in aquatic species but may struggle to detect weak or non-canonical CCMs in submerged plants. Finally, we propose a method for targeted molecular assays of phosphoenolpyruvate carboxylase (PEPC) expression that could provide a sensitive tool for characterizing photosynthetic diversity in a wide range of aquatic species. Our results show that methods and frameworks developed for terrestrial plants do not necessarily directly translate to aquatic systems. However, by extending these methods and integrating multiple lines of evidence we can improve our ability to characterize photosynthetic diversity in aquatic plants.

plant biology↗

A non-destructive approach for measuring rice panicle-level photosynthetic responses using 3D-image reconstruction

Our understanding of the physiological response of rice inflorescence (panicle) to environmental stresses is limited by the challenge of accurately determining panicle photosynthetic parameters and their impact on grain yield. This is primarily due to lack of a suitable gas exchange methodology for panicles, as well as non-destructive methods to accurately determine panicle surface area. To address these challenges, we have developed a custom panicle gas exchange cylinder compatible with the LiCor 6800 Infra-red Gas Analyzer. Accurate surface area measurements were determined with a 3D panicle imaging platform to normalize the panicle-level photosynthetic measurements. We observed differential responses in both panicle and flag leaf for two temperate Japonica rice genotypes (accessions, TEJ-1 and TEJ-2) exposed to heat stress during early grain filling. There was a notable divergence in relative photosynthetic contribution of flag leaf and panicles for the genotype tolerant to heat stress (TEJ-2) compared to the less tolerant accession. The novelty of this approach is that it is non-destructive and more accurately determines panicle area and photosynthetic parameters, enabling researchers to monitor temporal changes in panicle physiology during the reproductive development. The method is useful for panicle-level measurements under diverse environmental stresses, and for evaluating genotypic variation for panicle physiology and architecture in other cereals with compact inflorescences.

physiology↗