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Schunke, C.

Publications and source records attributed to Schunke, C..

3 recordsLinked to original sources

CK1a-Mediated Two-Step Subunit Remodeling of the Circadian FRQ-FRH Complex

The circadian clock of Neurospora operates through a negative feedback loop in which FRQ, along with FRH and CK1a, inhibits its transcriptional activator, WCC, via phosphorylation. CK1a, anchored to FRQ, hyperphosphorylates FRQ at its IDRs in a slow, temperature-independent manner, forming a module suited for molecular timekeeping. However, the molecular processes triggered by FRQs hyperphosphorylation have remained unclear. We show that FRH, the folded binding partner of disordered FRQ, decodes FRQs time-dependent phosphorylation state by triggering a two-step remodeling of the FRQ-FRH complex: initially, two FRH molecules bind a FRQ dimer, keeping it inactive by blocking its interaction with WCC. Gradual phosphorylation induces with a delay the dissociation of one FRH, exposing a binding site for WCC and activating the complex. Following a time delay, attributable to the slow and stochastic nature of phosphorylation, the release of the second FRH promotes nuclear export and subsequent degradation of FRQ. This stepwise remodeling ensures precise activation and inactivation of FRQ and positions FRH as a hub for decoding temporal phosphorylation information.

cell biology↗

Conserved perception of host and non-host signals via the a-pheromone receptor Ste3 in Colletotrichum graminicola

Understanding the interactions between fungal plant pathogens and host roots is crucial for developing effective disease management strategies. This study investigates the molecular mechanisms underpinning the chemotropic responses of the maize anthracnose fungus Colletotrichum graminicola to maize root exudates. We identify the 7-transmembrane G-protein coupled receptor (GPCR) CgSte3 as a key player in sensing both plant-derived class III peroxidases and diterpenoids. Activation of CgSte3 initiates signaling through the Cell Wall Integrity Mitogen-Activated Protein Kinase (CWI MAPK) pathway, facilitating the pathogens growth towards plant defense molecules. The NADPH oxidase CgNox2 is crucial for peroxidase sensing but not for diterpenoid detection. These findings reveal that CgSte3 and CWI MAPK pathways are central to C. graminicolas ability to hijack plant defense signals, highlighting potential targets for controlling maize anthracnose.

microbiology↗

Microbial two front attack: elaborate root infections by Colletotrichum graminicola oval conidia during maize anthracnose

Most plant pathogenic microorganisms have evolved to infect distinct host tissues. The maize anthracnose fungus Colletotrichum graminicola is known for its ability to invade above-ground tissues with asexual falcate conidia. In addition, C. graminicola produces a second asexual spore type, oval conidia. This study investigates the specific adaptations that make oval conidia suitable for maize root infection, demonstrating that only oval conidia exhibit root pathogen characteristics. These include the ability to germinate in soil and grow chemotropically toward root-secreted molecules. High-performance liquid chromatography/mass spectrometry (HPLC/MS) analyses combined with biological assays indicate that diterpenoids, such as dihydrotanshinone I, are likely responsible for the chemical attraction of C. graminicola. Genetic analysis identified the a-pheromone receptor CgSte3 as responsible for diterpenoid perception by the fungal pathogen. In conclusion, the understanding of maize anthracnose disease must be expanded to include an elaborate root infection cycle by oval conidia.

microbiology↗