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Treves, H.

Publications and source records attributed to Treves, H..

2 recordsLinked to original sources

Targeted Quantitative Analysis of Polar and Phosphorylated Intermediates of Algal and Plant Primary Carbon Metabolism Using an Optimized HILIC-Amide Tandem MS Workflow

Central carbon metabolism coordinates energy production and carbon skeleton allocation across photosynthetic and heterotrophic organisms. Here, we established an optimized targeted metabolomics workflow for Chlamydomonas reinhardtii and Arabidopsis thaliana using a single-run HILIC-MS/MS assay with alternating positive and negative ionization. Our method provides robust multi-class coverage across 21 amino acids, 11 carboxylic acids, 4 sugars, 3 adenine nucleotides, 2 nucleotide sugars, 18 phosphorylated compounds in CCM, and Acetyl-CoA in a 20-minute run using both ESI modes. An optimal concentration of medronic acid with a BEH Amide column at high pH prevented metal adsorption, and low quantification limits (10 to 50 nM) for labile intermediates such as PEP, ATP and RUBP were achieved. Retention time variations remained below 1.3%, and over 90% of analytes showed high linearity (R2 > 0.990) across dynamic ranges spanning two to three orders of magnitude (typically 0.01-0.5 uM up to 15-20 uM). For sample preparation, glass-fiber filters (GF/C) outperformed nitrocellulose for harvesting C. reinhardtii. For A. thaliana, it was proved that no further grinding with micro pestle and extended cooling were necessary. A two-phase chloroform/methanol/water extraction was essential, as a single-phase extraction co-extracted green chlorophyll, which heavily suppressed phosphorylated signals. In Arabidopsis, glutamate, fumaric acid and citric acid were the dominant primary pools, indicating the importance of dilution and column washing for preventing carryover, and sensitive intermediates were reliably quantified at physiological levels. Together, this unified analytical and extraction strategy enables robust, artifact-free, high-throughput profiling of central metabolism in photosynthetic organisms.

biochemistry↗

Operation of Carbon-Concentrating Mechanisms in Cyanobacteria and Algae requires altered poising of the Calvin-Benson cycle

Cyanobacteria and eukaryotic algae make a major contribution to global photosynthetic productivity. To cope with the low availability of CO2 in aqueous systems they deploy inorganic carbon-concentrating mechanisms (CCMs). These concentrate CO2 in microcompartments that contain Rubisco (carboxysomes in cyanobacteria; pyrenoids in green algae). The rest of the Calvin-Benson cycle (CBC) is located outside these microcompartments. We hypothesized that this physical separation requires modified poising of the CBC. Hence, Rubisco is physically separated from the other CBC enzymes outside these microcompartments. To test the hypothesis that this physical separation requires appropriate poising of the CBC, we profiled CBC metabolites under ambient CO2 in the cyanobacterium Synechocystis sp. PCC 6803 and three eukaryotic algae (Chlamydomonas reinhardtii, Chlorella sorokiniana, Chlorella ohadii). Comparison with recently reported profiles for a large set of terrestrial plants revealed that cyanobacteria and green algae have very distinctive CBC metabolite profiles, with low levels of pentose phosphates and, especially, high levels of ribulose 1,5-bisphosphate and 3-phosphoglycerate. We propose that large pools of the substrate and product of Rubisco are required to generate concentration gradients that drive movement into and out of the microcompartments. These observations raise questions about how CBC regulation was modified during the evolution of algal CCMs and their subsequent loss in terrestrial plants, and highlight that operation of CCMs requires co-evolution of the CBC. HighlightCBC metabolite profiles in the cyanobacterium Synechocystis and in three eukaryotic green algae at ambient CO2 concentration are very different to those in terrestrial plants, probably reflecting the operation of a carboxysome- or pyrenoid-based carbon concentrating mechanism.

biochemistry↗