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Wittemeier, L.

Publications and source records attributed to Wittemeier, L..

3 recordsLinked to original sources

In vivo RUBISCO activity in Synechocystis is regulated by RuBP availability

Ribulose-1,5-bisphosphate carboxylase/oxygenase (RUBISCO) is the main CO2-fixing enzyme on earth and entry point of carbon into the Calvin-Benson-Bassham cycle. Fueled by photosynthesis, C-assimilation by RUBISCO must be tightly controlled. RUBISCO regulation upon transition from light to darkness is not fully understood in the cyanobacterium Synechocystis sp. PCC 6803 (Synechocystis). Synechocystis does not have a RUBISCO activase that regulates RUBISCO activity in vascular plants by removing intrinsic sugar phosphate inhibitors from its active site. Instead, the regulatory CP12 protein of Synechocystis inactivates glyceraldehyde 3-phosphate dehydrogenase (GAPDH2) and phosphoribulokinase (PRK) during darkness. This mechanism indicates metabolic regulation of RUBISCO. We investigated C-assimilation in vivo at the transition to darkness by dynamic 13CO2 labeling experiments. We monitored RUBISCO activity by 13C-incorporation into 1-C position of 3PGA. Other than the wild type, the{Delta} cp12 mutant continued to assimilate 13CO2 into 3PGA in darkness. RUBISCO abundances and specific activities were not altered in{Delta} cp12 and upon light to dark transition. CP12 was required to shut down the CBB cycle during the night. Complementation of{Delta} cp12 by native CP12 ({Delta}cp12::cp12) and CP12 with mutated conserved cysteines in its GAPDH2- and PRK-binding domains ({Delta}cp12::cp12{Delta}Cys) showed that both native binding domains are required to fully inactivate the CBB cycle in the night. RuBP levels were highly elevated in{Delta} cp12 upon transition to darkness. Complementation with mutated and native CP12 variants gradually reduced RuBP to wild type levels and revealed highly significant correlation between RuBP concentration and the time-shifted 13C-uptake into 3PGA. We propose that RUBISCO activity in Synechocystis at day-night transition is regulated through depletion and blocked regeneration of RuBP. 13C-positional analyses of aspartate suggest regeneration of RuBP in{Delta} cp12 via dysregulated gluconeogenesis and the oxidative pentose phosphate path. We demonstrate that RUBISCO activity of Synechocystis is present throughout diurnal growth and depends on the availability of its substrate.

plant biology↗

Dynamic photosynthetic labelling and carbon-positional mass spectrometry monitor in vivo carbon assimilation rates by ribulose-1,5-bisphosphate carboxylase.

AbstractRibulose-1,5-bisphosphate carboxylase/oxygenase (RUBISCO) is the most abundant enzyme and CO2 bio-sequestration system on earth. Its in vivo activity is usually determined by 14CO2 incorporation into 3-phosphoglycerate (3PGA). The radiometric analysis of 3PGA does not distinguish carbon positions. Hence, RUBISCO activity that fixes carbon into 1-C position of 3PGA and Calvin-Benson-Bassham (CBB) cycle activities that redistribute carbon into its 2-C and 3-C positions are not resolved. This study aims to provide technology that differentiates between these activities. In source fragmentation of gas chromatography-mass spectrometry (GC- MS) enables paired isotopologue distribution analyses of fragmented substructures and the complete metabolite structure. GC-MS measurements after dynamic photosynthetic 13CO2 labelling allowed quantification of the 13C fractional enrichment (E13C) and molar carbon assimilation rates (A13C) at carbon position 1-C of 3PGA by combination of E13C from carbon positions 2,3-C2 and 1,2,3-C3 with quantification of 3PGA concentrations. We validated the procedure using two GC-time of flight (TOF)-MS instruments, operated at nominal or high mass resolution and tested expected positional labelling of 3PGA by in vivo glycolysis of positional labelled glucose isotopomers. Application to{Delta} gapdh1 and{Delta} gapdh2 mutants of the highly divergent glyceraldehyde-3-phosphate dehydrogenases (GAPDH) from Synechocystis sp. PCC 6803 revealed full inactivation of the CBB cycle with maintained RUBISCO activity in the{Delta} gapdh2 mutant and a CBB cycle modulating role of GAPDH1 under fluctuating CO2 supply. RUBISCO activity in the CBB-deficient{Delta} gapdh2 mutant can re-assimilate CO2 released by catabolic pathways. We suggest that RUBISCO activity in Synechocystis can scavenge carbon loss through the pentose phosphate pathway or other cellular decarboxylation reactions.

plant biology↗

Positional 13C Enrichment Analysis of Aspartate by GC-MS to Determine PEPC Activity In Vivo

Photoautotrophic organisms fix inorganic carbon (Ci) by two enzymes, ribulose-1,5-bisphosphate carboxylase/oxygenase (RUBISCO) and phosphoenolpyruvate carboxylase (PEPC). RUBISCO assimilates Ci (CO2) into the 1-C position of 3-phosphoglycerate (3PGA). The Calvin-Benson-Basham (CBB) cycle redistributes fixed carbon atoms into 2,3-C2 of the same molecule. PEPC uses phosphoenolpyruvate (PEP) derived from 3PGA and assimilates Ci (HCO3-) into 4-C of oxaloacetate (OAA). 1,2,3-C3 of OAA and of its transaminase product aspartate originate directly from 1,2,3-C3 of 3PGA. Positional isotopologue analysis of aspartate, the main downstream metabolite of OAA in the model cyanobacterium Synechocystis sp. PCC 6803 (Synechocystis), allows differentiation between PEPC, RUBISCO, and CBB cycle activities within one molecule. We explored in source fragmentation of gas chromatography-electron impact ionization-mass spectrometry (GC-EI-MS) at nominal mass resolution and GC-atmospheric pressure chemical ionization-MS (GC-APCI-MS) at high mass resolution. This enabled the determination of fractional 13C enrichment (E13C) at each carbon position of aspartate. Two prevailing GC-MS derivatization methods, i.e. trimethylsilylation and tert-butyldimethylsilylation, were evaluated. The method was validated by 13C-isotopomer mixtures of positional labeled aspartic acid. Combination with dynamic 13CO2 labeling of Synechocystis cultures allowed direct measurements of PEPC activity in vivo alongside analyses of RUBISCO and CBB cycle activities. Accurate quantification of aspartate concentration and positional E13C provided molar Ci assimilation rates during the day and night phases of photoautotrophic Synechocystis cultures. The validated method offers several applications to characterize the photosynthetic Ci fixation in different organisms.

biochemistry↗