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Caliebe, F.

Publications and source records attributed to Caliebe, F..

2 recordsLinked to original sources

Fructose-1,6-bisphosphatase (FBPase) fine-tunes heterotrophic growth in cyanobacteria

Cyanobacteria switch their carbon metabolism between photoautotrophy and heterotrophy during diurnal cycles. In cyanobacteria, the classical glycolytic control point is characterized by two catabolic phosphofructokinases (PFKs) and a bifunctional anabolic fructose-1,6-biphosphatase/sedoheptulose-1,7-biphosphatase (F/SBPase; slr2094) catalyzing two key reactions in the Calvin-Benson-Bassham (CBB) cycle. In addition, Synechocystis possesses a fructose-1,6-bisphosphatase (FBPase; slr0952) with yet unknown physiological function and biochemical properties. Hence, our aim was to investigate the FBPase and the interplay of the four enzymes in photoautotrophic and heterotrophic carbon metabolism. We discovered that FBPase is specific for FBP, showing no SBPase activity, and unlike F/SBPase does not exhibit any biochemical regulatory properties. Growth studies with deletion mutants revealed that FBPase and PFKs play a major role under heterotrophic conditions. In contrast to F/SBPase, FBPase is not involved in the CBB cycle, but instead fine-tunes heterotrophic growth. Transaldolase cannot replace the function of SBPase in the CBB cycle. In conclusion, the classical Embden-Meyerhoff-Parnass pathway control point, which is known to be mediated by the antagonistic enzyme pair PFK and FBPase in heterotrophic bacteria and eukaryotes, is also present in Synechocystis. We found redox-insensitive FBPases from plant chloroplasts to be closely related to Synechocystis FBPase, indicating that they might serve a similar function. HighlightSynechocystis fructose-1,6-bisphosphatase (slr0952) is unlike fructose-1,6-biphosphatase/sedoheptulose-1,7-biphosphatase (slr2094) monofunctional, not redox-regulated, and supports heterotrophy in darkness, despite catalyzing an anabolic reaction. Thus, presumably Slr2094 alone drives two Calvin-Benson-Bassham cycle key reactions.

plant biology↗

Host specialization defines the emergence of new fungal plant pathogen populations

Host-driven selection can be considered a strong driver of pathogen evolution. To successfully infect, colonize and complete their life cycle, plant pathogens are under constant selective pressures imposed by hosts, leading to genetic adaptation and possibly lineage radiation or speciation. Population and comparative genomics approaches are powerful tools to identify signatures of selection associated with host specialization in pathogen genomes and further allow recapturing population histories. Implementing such approaches, we identified evolutionary signatures of divergent host specialisation in distinct lineages of the fungal pathogen Zymoseptoria tritici, a major disease causing-agent of wheat. Unique collections of Z. tritici were isolated from wild (Aegilops spp.) and domesticated (Triticum aestivum) host grasses in the Middle East and whole-genome sequencing was performed in a selected subset of isolates from each collection. We observed distinct population structure between the two host-diverging pathogens and identified particular genomic features in the Aegilops-infecting isolates that may have shaped their evolutionary history. Phylogenomic analyses revealed that A. cylindrica and A. tauchii -infecting populations of Z. tritici form separate clusters, possibly reflecting incipient speciation driven by divergent host specialization. Using infection experiments, we confirm that Z. tritici isolates collected from Aegilops spp. only infect their respective host species and not T. aestivum. Population genomics analyses and demographic inference furthermore allowed us to detect signatures of recent selection and show that divergence of the wheat-infecting lineage likely coincided with wheat domestication. At last, we confirm a virulence-related role for one candidate effector located in a selective sweep region of the A. cylindrica-infecting pathogen. Taken together, our findings highlight the interplay between agricultural and wild hosts on the evolution of fungal plant pathogens and illustrate host specialization as a possible route of rapid pathogen emergence.

evolutionary biology↗