Macrocyclization can enhance the selectivity of acyclic compounds toward structurally similar biological targets such as kinases. WEE1 regulates cellular homeostasis and is a promising target in oncology. The clinical candidate AZD1775 (1) failed to progress past Phase II trials because of patient tolerability issues, likely due to off-target inhibition of polo-like kinase 1 (PLK1). Herein, a computer-aided drug design approach was conducted to develop a macrocycle based on the 1-WEE1 X-ray cocrystal structure. Significantly enhanced WEE1 inhibitory selectivity over PLK1 was determined for leading macrocycle 2, which also demonstrated broader kinome-wide selectivity. Patient-derived organoids from colorectal cancer (CRC) peritoneal and liver metastases, treated with 2, demonstrated comparably strong or enhanced anticancer efficacy compared to that of 1. Against patient-matched normal colon vs primary CRC organoids, 2 potently and selectively treated CRC, as well as enhanced DNA damage compared to 1. Finally, the X-ray cocrystal structure of 2 bound to WEE1 validated its computationally predicted bioactive binding mode.
Herein, we report the discovery of APO-50815 (14), a potent and selective thietane-3-ol WEE1 inhibitor. When tested against TP53-mutated colorectal cancer (CRC) patient-derived organoids (PDOs) grown from peritoneal and liver metastases, 14 exhibited outstanding anticancer efficacy, surpassing previously reported branched alkane counterpart 3, as well as clinical candidates AZD1775 (1) and ZN-c3 (2). Against primary CRC organoids with diverse TP53, BRAF and KRAS mutation profiles compared with patient-matched normal colon organoids, 14 exhibited selectively potent activity, yielding exceptionally high TI values (129-238) that highlight a substantial therapeutic window for potential cancer treatment. Against primary CRC PDOs (TP53-WT, BRAF-V600E, KRAS-WT), 14 profoundly elevated DNA damage and replication stress compared to 1, while amplifying cellular apoptosis, confirming a broadly similar but superior mode of action. Owing to its highly selective and exemplary anticancer efficacy, 14 represents a valuable tool compound for drug testing investigations against primary and metastatic CRCs, especially in the context of PDOs.
The bifunctional soluble epoxide hydrolase (sEH) represents a promising target for inflammation-related diseases. Although potent inhibitors targeting each domain are available, sEH-PROTACs offer the unique ability to simultaneously block both enzymatic functions, mimicking the sEH knockout phenotype, which has been associated with reducing inflammation, including neuroinflammation, and delaying the progression of Alzheimer's disease. Herein, we report the structure-based development of a potent sEH-PROTAC as a useful pharmacological tool. In order to facilitate a rapid testing of the PROTACs, a cell-based sEH degradation assay was developed utilizing HiBiT technology. We designed and synthesized 24 PROTACs. Furthermore, cocrystallization of sEH with two selected PROTACs allowed us to explore the binding mode and rationalize the most optimal linker length. After comprehensive biological and physicochemical characterization of this series, the most optimal PROTAC 23 was identified in primary human and murine cells, highlighting the potential of using 23 in disease-relevant cell and tissue models.
The Pauson-Khand reaction has in the past 50 years become one of the most common cycloaddition reactions in chemistry. Coupling two unsaturated bonds with carbon monoxide, the transformation remains limited to CO as a C 1 building block. Herein we report analogous cycloaddition reactions with nitrenes as an N 1 unit. The reaction of a nonconjugated diene with a nitrene precursor produces bicyclic bioisosteres of common saturated heterocycles such as piperidine, morpholine, and piperazine. Experimental and computational mechanistic studies support relaying of the diradical nature of triplet nitrene into the π-system. We showcase the reaction’s utility in late-stage functionalization of drug compounds and discovery of soluble epoxide hydrolase inhibitors.
Soluble epoxide hydrolase (sEH) represents a promising target for inflammation-related diseases as it hydrolyzes highly anti-inflammatory epoxy-fatty acids (EpFAs) to the less active corresponding diols.1 sEH harbours two distinct catalytic domains, the C-terminal hydrolase domain and the N-terminal phosphatase domain which are connected by a proline-rich linker. Although potent inhibitors of enzymatic activity are available for both domains, sEH-PROTACs offer the unique ability to simultaneously degrade both domains, mimicking the sEH knockout phenotype associated with beneficial effects as reducing inflammation, attenuating neuroinflammation, and delaying the progression of Alzheimer's disease. Herein, we report the structure-based development of a potent sEH-PROTAC as a useful tool compound for the investigation of sEH. In order to facilitate a rapid testing of the synthesized compounds a cell-based sEH degradation assay was developed based on the HiBiT-technology. A structure-activity-relationship (SAR) investigation was performed, based on the crystal structure of previously published sEH inhibitor FL217 where we identified two possible exit vectors. We designed and synthesized a set of 24 PROTACs with varying linkers in a combinatorial manner. Furthermore, co-crystallization of sEH with two selected PROTACs allowed us to explore the binding mode and rationalize the appropriate linker length. After biological and physicochemical investigation, the most suitable PROTAC 23 was identified and applied to degrade sEH in primary human macrophages, marking the successful translation and applicability to non-artificial systems. ### Competing Interest Statement The authors have declared no competing interest.
Recent successes in developing small molecule degraders that act through the ubiquitin system have spurred efforts to extend this technology to other mechanisms, including the autophagosomal-lysosomal pathway. Therefore, reports of autophagosome tethering compounds (ATTECs) have received considerable attention from the drug development community. ATTECs are based on the recruitment of targets to LC3/GABARAP, a family of ubiquitin-like proteins that presumably bind to the autophagosome membrane and tether cargo-loaded autophagy receptors into the autophagosome. In this work, we rigorously tested the target engagement of the reported ATTECs to validate the existing LC3/GABARAP ligands. Surprisingly, we were unable to detect interaction with their designated target LC3 using a diversity of biophysical methods. Intrigued by the idea of developing ATTECs, we evaluated the ligandability of LC3/GABARAP by in silico docking and large-scale crystallographic fragment screening. Data based on approximately 1000 crystal structures revealed that most fragments bound to the HP2 but not to the HP1 pocket within the LIR docking site, suggesting a favorable ligandability of HP2. Through this study, we identified diverse validated LC3/GABARAP ligands and fragments as starting points for chemical probe and ATTEC development. Autophagosome tethering compounds (ATTECs) are small molecule degraders hijacking the autophagy system. Here, the authors show that current ATTEC ligands did not bind to their designated targets but establish good ligandability of ATG8 isoforms through fragment screening and docking.
Human histone deacetylase 4 (HDAC4) is a key epigenetic regulator involved in a number of important cellular processes. This makes HDAC4 a promising target for the treatment of several cancers and neurodegenerative diseases, in particular Huntington's disease. HDAC4 is highly regulated by phosphorylation and oxidation, which determine its nuclear or cytosolic localization, and exerts its function through multiple interactions with other proteins, forming multiprotein complexes of varying composition. The catalytic domain of HDAC4 is known to interact with the SMRT/NCOR corepressor complex when the structural zinc-binding domain (sZBD) is intact and forms a closed conformation. Crystal structures of the HDAC4 catalytic domain have been reported showing an open conformation of HDAC4 when bound to certain ligands. Here, we investigated the relevance of this HDAC4 conformation under physiological conditions in solution. We show that proper zinc chelation in the sZBD is essential for enzyme function. Loss of the structural zinc ion not only leads to a massive decrease in enzyme activity, but it also has serious consequences for the overall structural integrity and stability of the protein. However, the Zn2+ free HDAC4 structure in solution is incompatible with the open conformation. In solution, the open conformation of HDAC4 was also not observed in the presence of a variety of structurally divergent ligands. This suggests that the open conformation of HDAC4 cannot be induced in solution, and therefore cannot be exploited for the development of HDAC4-specific inhibitors.
Disease-related phenotypic assays enable unbiased discovery of novel bioactive small molecules and may provide novel insights into physiological systems and unprecedented molecular modes-of-action (MMOA). Herein we report the identification and characterization of epoxykynin, a potent inhibitor of the soluble epoxide hydrolase (sEH). Epoxykynin was discovered by means of a cellular assay monitoring modulation of kynurenine (Kyn) levels in BxPC-3 cells upon stimulation with the cytokine interferon-γ (IFN-γ) and subsequent target identification employing affinity-based chemical proteomics. Increased Kyn levels are associated with immune suppression in the tumor microenvironment and, thus, the Kyn pathway and its key player indoleamine 2,3-dioxygenase 1 (IDO1) are appealing targets in immuno-oncology. However, targeting IDO1 directly has led to limited success in clinical investigations, demonstrating that alternative approaches to reduce Kyn levels are in high demand. We uncover a cross-talk between sEH and the Kyn pathway that may provide new opportunities to revert cancer-induced immune tolerance.
Recent successes in developing small-molecule degraders that act through the ubiquitin system have spurred efforts to extend this technology to other mechanisms, including the autophagosomal-lysosomal pathway. Therefore, reports of autophagosome tethering compounds (ATTECs) have received considerable attention from the drug development community. ATTECs are based on the target recruitment to LC3/GABARAP, a family of membrane-bound proteins that tether autophagy receptors to the autophagosome. In order to validate the existing ligands, we rigorously tested target engagement of reported ATTEC ligands and handles. Surprisingly, using various biophysical methods, most available ligands did not interact with their designated target LC3. Intrigued by the idea of developing ATTECs, we evaluated the druggability of LC3/GABARAP by in silico docking and large scale crystallographic fragment screening. The data revealed that most fragments bound to the HP2, but not the HP1 pocket of the LC3-interacting region (LIR) docking site, suggesting favorable druggability of this binding pocket. Here, we present diverse comprehensively validated ligands for future ATTEC development.
The Pauson-Khand reaction was invented in 1971, and is one of the most common pericyclic reactions in chemistry featuring the reaction of two unsaturated bonds and carbon monoxide. Even 50 years after its discovery, it remains limited to carbon monoxide as a C1 building block. Herein we report pericyclic reactions with nitrenes as a N1 unit. The reaction that comprises a non-conjugated diene and a nitrene precursor allows the rapid synthesis of bicyclic bioisosteres for common saturated heterocycles such as piperidine, morpholine, piperazine. This is achieved by relaying the diradical nature of triplet nitrene as shown experimentally and computationally. We exemplified this approach in two protocols, late-stage functionalization of drugs, and the application in drug discovery for inhibitors of soluble epoxide hydrolase.