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Boergel, A.

Publications and source records attributed to Boergel, A..

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Short linear motifs - Unexplored players driving Toxoplasma gondii infection

Pathogens infect hosts by interacting with host proteins and exploiting their functions to their advantage. Short linear motifs, small functional regions within intrinsically disordered protein regions, are common mediators of host-pathogen protein interactions. While motifs have been more extensively studied in viruses and bacteria, the extent to which eukaryotic unicellular parasites use motifs during infection remains unexplored. Toxoplasma gondii is a widespread intracellular Apicomplexan parasite capable of infecting all warm-blooded animals and invading any of their nucleated cells. Toxoplasmas secreted proteins are key in interacting with host proteins during infection, making them potential sources for motifs. To highlight the role of motifs in Toxoplasma gondii infection, we curated 21 known motif instances in Toxoplasma proteins from the scientific literature. To identify more motifs in Toxoplasma secreted proteins, we developed a computational pipeline that annotates putative motif matches with structural and functional features. Through this approach, we identified a set of 24,291 motif matches in 295 secreted proteins. We highlight strategies for further prioritisation of likely functional motif matches by focusing on integrin motifs, degrons and TRAF6-binding motifs. We subjected four predicted TRAF6-binding motifs to experimental validation, supporting the predicted motifs in the Toxoplasma proteins RON10 and GRA15. Our motif predictions provide a valuable resource for generating hypotheses and designing experiments to study infection mechanisms. The characterisation of motifs in Toxoplasma will be key to understanding the molecular principles underlying its broad host range and more comprehensive Apicomplexan infection strategies. ImportanceToxoplasma gondii is a widely distributed intracellular parasite that achieves a successful infection by interacting with different host cell proteins. Short linear motifs are small functional modules found in unstructured protein regions and recognised by folded protein domains. Given that unstructured protein regions are a common feature of Toxoplasmas proteins, we hypothesise that motifs play important roles during its infection cycle. Here, we highlight the role of motifs during the Toxoplasma host cell invasion cycle through a curated set of motif examples. Through a computational pipeline, we predict thousands of motifs in secreted proteins, outline strategies for working with these predictions and finally experimentally test proteins containing a motif involved in the innate immune response, successfully showing the binding of two motifs. Our work provides a resource for further motif testing in Toxoplasma proteins, aiming at understanding the molecular mechanisms of its infection strategies and its broad host range.

bioinformatics↗

A structural competition involving WDR5 times circadian oscillations

In the mammalian circadian clock, the transcription factor BMAL1/CLOCK cycles between an active state recruiting co-activators like MLL1, and repressed states associated with the clock proteins Period1/2 (PER1/2) and Cryptochrome1/2 (CRY1/2). The MLL1 complex component WDR5 was also found in a repressive PER complex, but the roles of WDR5-PER interactions are unknown. Here we show that WDR5 directly binds to the C-terminal CRY binding domain (CBD) regions of PER1 and PER2. PER2 binds WDR5 via a WDR5 binding (WBM) motif within the PER2/CRY interface, imposing a molecular choice between PER2/WDR5- and PER2/CRY complexes. PER1 predominantly binds WDR5 via a WDR5 interacting (WIN) motif outside the CBD and exhibits a 15-fold higher WDR5 affinity than PER2. Thereby PER1 can form trimeric PER1WIN/WDR5/RbBP5WBM - and PER1/WDR5/CRY complexes as potential transition states between activating MLL1WIN/WDR5/RbBP5WBM - and repressive PER/CRY complexes. Overexpressing WDR5 in mammalian cells increases the circadian amplitude, whereas a compound targeting the WIN motif binding site of WDR5 weakens PER1-WDR5 interactions and shortens the circadian oscillation period by 2 to 3 hours. Together, our studies uncover WDR5 as direct PER interaction partner at the interface between active- and repressed states of BMAL1/CLOCK and suggest a functional role of WDR5 and its WIN site interactions in the mammalian clock by both enhancing circadian oscillations and creating a temporal delay.

biochemistry↗