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Clausen, M. H.

Publications and source records attributed to Clausen, M. H..

4 recordsLinked to original sources

Discovery of Tankyrase scaffolding inhibitor specifically targeting the ARC4 peptide binding domain

In the past, development of tankyrase inhibitors has focused on the ADP-ribosyltransferase domain. Targeting tankyrases ability to interact with protein substrates through their ARC domains represents an alternative strategy to be explored as a therapeutic approach against specific protein-protein interactions. In this paper, we employed a FRET-based assay to identify ARC4-binding compounds by screening the EU-OPENSCREEN Pilot and Commercials Diversity libraries. We discovered an effective series of compounds with the same scaffold and through chemical synthesis we obtained the compound S8 (ARCher-142), which binds selectively to ARC4 with potency of 8 {micro}M. NMR analysis and X-ray crystallography allowed us to identify the binding site in ARC4 and to rationalize the observed selectivity. Despite binding exclusively to ARC4, the inhibitor can attenuate the WNT/{beta}-catenin signaling pathway in cells. Our work demonstrates that targeting single ARC domains is possible, offering an inhibition approach tailored to tankyrase ARC4 inhibition. SignificanceTankyrases impact a variety of cellular processes by binding proteins through their ARC domains and the inhibition of these scaffolding functions represents an alternative therapeutic approach to catalytic inhibitors. With a FRET-based high-throughput screening of the EU-OPENSCREEN Pilot and Commercials Diversity libraries we discovered a pyrrolone-based scaffold that is interestingly selective towards ARC4, despite the high conservation of the ARC binding site. Our synthesized compound S8 (ARCher-142) displays an 8 {micro}M potency for TNKS2 ARC4. With NMR and X-ray crystallography we demonstrate that S8 (ARCher-142) competes with the peptide optimized for binding and extends to a unique hydrophobic sub-pocket of ARC4. The compound attenuates the WNT/{beta}-catenin signaling pathway in cells and interestingly offers the possibility to target specific protein-protein interactions mediated by ARC4, paving the way for the development of a pyrrolone-based class of tankyrase scaffolding inhibitors.

biochemistry↗

Spatiotemporal variation in cutin polymerization and remodeling mediated by GDSL-hydrolase enzymes during tomato fruit development

Land plants produce a cuticle, an extracellular hydrophobic layer that covers aerial organs and is involved in many critical protective roles, most notably in preventing desiccation. The predominant component of the cuticle is the lipidic polyester, cutin, which is deposited in the epidermal primary cell wall. Most of cutin of tomato fruit, a model for cuticle research, is polymerized by the extracellular GDSL-hydrolase enzyme CUTIN SYNTHASE-LIKE 1 (CUS1). However, other enzymes involved in cutin assembly remain to be identified and characterized. In this current study, we investigated whether other GDSL-hydrolases that are highly expressed in fruit epidermis might also contribute to cutin polymerization and restructuring. Candidates include homologs of Arabidopsis thaliana CUTICLE DESTRUCTIVE FACTOR 1 (CDEF1), which has been reported to catalyze cutin hydrolysis, as well as other phylogenetically diverse and distantly related GDSL-hydrolases. We determined that members of the CUS and CDEF families can catalyze the transesterification of cutin precursors in vitro, and can modify tomato fruit cutin structure in semi-in vivo assays. Tomato mutant knockout lines of CUS and CDEF genes generated by CRISPR/Cas9 and cross mutations with cus1 (previously cd1) were found to exhibit different fruit and flower phenotypes related to cutin assembly, including an effect on cutin monomer esterification, composition and content, cutin nanoridge formation in flowers, fruit cuticle permeability and permeance. Characterization of the mutant phenotypes, in combination with the enzyme analysis and bioassays, revealed distinct differences in the contribution of CUS and CDEF enzymes to cutin biosynthesis and remodeling. Our analysis also revealed unexpected spatiotemporal variation in cutin polymerization and structure coordinated by distinct GDSL-hydrolase enzymes over the fruit surface, which further suggests great complexity in cutin deposition and cuticle functions during organ development. HighlightsO_LICutin polymerization in tomato is catalyzed by coordinating the spatiotemporal expression of CUTIN SYNTHASE enzymes in different organs, including during fruit development. C_LIO_LIExtracellular cutin polymerization is not a function limited to the canonical CUTIN SYNTHASE family members but can be also be catalyzed by other GDSL-hydrolase enzymes, as suggested by evidence in vitro. C_LIO_LITomato CDEF enzymes, a clade within the GDSL-hydrolase superfamily, are involved in remodeling cutin structure during fruit development. C_LIO_LIThe biosynthesis and remodeling of cutin over the tomato fruit surface is spatially heterogeneous. C_LI

plant biology↗

Morphological Profiling Dataset of EU-OPENSCREEN Bioactive Compounds Over Multiple Imaging Sites and Cell Lines

Morphological profiling with the Cell Painting assay has emerged as a promising method in drug discovery research. The assay captures morphological changes across various cellular compartments enabling the rapid identification of the effect of compounds. We present a comprehensive morphological profiling dataset using the carefully curated and well-annotated EU-OPENSCREEN Bioactive Compound Set. Our profiling dataset was generated across multiple imaging sites with high-throughput confocal microscopes using the Hep G2 as well as the U2 OS cell line. We employed an extensive assay optimization process to achieve high data quality across the different imaging sites. An analysis of the four replicates validates the robustness of the generated data. We compare morphological features of the different cell lines and map the profiles to activity, toxicity, and basic compound targets to further describe the dataset as well as to demonstrate the potential of this dataset to be used for mechanism of action exploration.

cell biology↗

Spirolactone, an unprecedented antifungal β-lactone spiroketal macrolide from Streptomyces iranensis

Fungal infections pose a great threat to public health and there are limited antifungal medicaments. Streptomyces is an important source of antibiotics, represented by the clinical drug amphotericin B. The rapamycin-producer Streptomyces iranensis harbors an unparalleled Type I polyketide synthase, which codes for a novel antifungal macrolide alligamycin A (1), the structure of which was confirmed by NMR, MS, and X-ray crystallography. Alligamycin A harbors an undescribed carbon skeleton with 13 chiral centers, featuring a ({beta}-lactone moiety, a [6,6]-spiroketal ring, and an unprecedented 7-oxo-octylmalonyl-CoA extender unit incorporated by a potential novel crotonyl-CoA carboxylase/reductase. The ali biosynthetic gene cluster was confirmed through CRISPR-based gene editing. Alligamycin A displayed profound antifungal effects against numerous clinically relevant filamentous fungi, including Talaromyces and Aspergillus species. ({beta}-Lactone ring is essential for the antifungal activity and alligamycin B (2) with disruption in the ring abolished the antifungal effect. Proteomics analysis revealed alligamycin A potentially disrupted the integrity of fungal cell walls and induced the expression of stress-response proteins in Aspergillus niger. Alligamycins represent a new class of potential drug candidate to combat fungal infections.

biochemistry↗