Eukaryotic initiation factor 2B (eIF2B), a guanine nucleotide exchange factor (GEF), promotes protein synthesis by charging translation initiation factor 2 (eIF2) with GTP. Stress-induced phosphorylation of eIF2 on its α-subunit [eIF2(αP)] inhibits this reaction triggering a protective Integrated Stress Response (ISR). A DNA-encoded chemical library (DEL) screen for modulators of eIF2B, led to the identification of a chemical series that stabilises the inactive state of eIF2B, stimulating the ISR. Cryo-EM of compound-bound eIF2B reveals a conformational switch to the inactive state engaged by eIF2(αP). In cells, compound activity is sensitive to eIF2's phosphorylation state and to a competing eIF2B ligand (ISRIB) that activates the GEF allosterically. These findings establish the feasibility of targeting eIF2B with a drug-like allosteric inhibitor, that serves as an ISR activator (ISRAC), paving the way to explore the therapeutic potential of eIF2B-directed ISR activation.
LpxH is a key enzyme in the lipid A biosynthesis pathway and a promising target for the development of new antibiotics against Gram-negative pathogens. We report the discovery and optimization of two structurally distinct LpxH inhibitor series discovered through DNA-encoded chemical library (DECL) screening. Our DECL affinity selections identified a known sulfonyl piperazine class (Series 1), and a novel biphenyl-pyrimidine scaffold (Series 2) that represented a new chemical starting point for LpxH inhibitor development. To overcome liabilities, like poor solubility and low potency, a structure-based drug design approach was used for downstream hit expansion. Optimization of Series 1 yielded compound 14, which achieved wild-type activity against E. coli. Optimization of Series 2 led to compounds 21 and 24, displaying a MIC of 16 µg/mL against efflux-defective and hyperpermeable E. coli and a MIC of 8 µg/mL against efflux-defective E. coli respectively. Target engagement was confirmed via bacterial genetic sensitization experiments, demonstrating a LpxH-mediated mechanism of action.
Bfl-1 is overexpressed in both hematological and solid tumors; therefore, inhibitors of Bfl-1 are highly desirable. A DNA-encoded chemical library (DEL) screen against Bfl-1 identified the first known reversible covalent small-molecule ligand for Bfl-1. The binding was validated through biophysical and biochemical techniques, which confirmed the reversible covalent mechanism of action and pointed to binding through Cys55. This represented the first identification of a cyano-acrylamide reversible covalent compound from a DEL screen and highlights further opportunities for covalent drug discovery through DEL screening. A 10-fold improvement in potency was achieved through a systematic SAR exploration of the hit. The more potent analogue compound 13 was successfully cocrystallized in Bfl-1, revealing the binding mode and providing further evidence of a covalent interaction with Cys55.
Evasion of apoptosis is critical for the development and growth of tumors. The pro-survival protein myeloid cell leukemia 1 (Mcl-1) is an antiapoptotic member of the Bcl-2 family, associated with tumor aggressiveness, poor survival, and drug resistance. Development of Mcl-1 inhibitors implies blocking of protein-protein interactions, generally requiring a lengthy optimization process of large, complex molecules. Herein, we describe the use of DNA-encoded chemical library synthesis and screening to directly generate complex, yet conformationally privileged macrocyclic hits that serve as Mcl-1 inhibitors. By applying a conceptual combination of conformational analysis and structure-based design in combination with a robust synthetic platform allowing rapid analoging, we optimized in vitro potency of a lead series into the low nanomolar regime. Additionally, we demonstrate fine-tuning of the physicochemical properties of the macrocyclic compounds, resulting in the identification of lead candidates 57/59 with a balanced profile, which are suitable for future development toward therapeutic use.
DNA-encoded chemical library (DEL) technology provides a time- and cost-efficient method to simultaneously screen billions of compounds for their affinity to a protein target of interest. Here we report its use to identify a novel chemical series of inhibitors of the thioesterase activity of polyketide synthase 13 (Pks13) from Mycobacterium tuberculosis (Mtb). We present three chemically distinct series of inhibitors along with their enzymatic and Mtb whole cell potency, the measure of on-target activity in cells, and the crystal structures of inhibitor-enzyme complexes illuminating their interactions with the active site of the enzyme. One of these inhibitors showed a favorable pharmacokinetic profile and demonstrated efficacy in an acute mouse model of tuberculosis (TB) infection. These findings and assay developments will aid in the advancement of TB drug discovery.
Inhibition of hydroxy acid oxidase 1 (HAO1) is a strategy to mitigate the accumulation of toxic oxalate that results from reduced activity of alanine-glyoxylate aminotransferase (AGXT) in primary hyperoxaluria 1 (PH1) patients. DNA-Encoded Chemical Library (DECL) screening provided two novel chemical series of potent HAO1 inhibitors, represented by compounds 3-6. Compound 5 was further optimized via various structure-activity relationship (SAR) exploration methods to 29, a compound with improved potency and absorption, distribution, metabolism, and excretion (ADME)/pharmacokinetic (PK) properties. Since carboxylic acid-containing compounds are often poorly permeable and have potential active glucuronide metabolites, we undertook a brief, initial exploration of acid replacements with the aim of identifying non-acid-containing HAO1 inhibitors. Structure-based drug design initiated with Compound 5 led to the identification of a nonacid inhibitor of HAO1, 31, which has weaker potency and increased permeability.
The structural mechanisms of single-pass transmembrane enzymes remain elusive. Kynurenine 3-monooxygenase (KMO) is a mitochondrial protein involved in the eukaryotic tryptophan catabolic pathway and is linked to various diseases. Here, we report the mammalian full-length structure of KMO in its membrane-embedded form, complexed with compound 3 (identified internally) and compound 4 (identified via DNA-encoded chemical library screening) at 3.0 Å resolution. Despite predictions suggesting that KMO has two transmembrane domains, we show that KMO is actually a single-pass transmembrane protein, with the other transmembrane domain lying laterally along the membrane, where it forms part of the ligand-binding pocket. Further exploration of compound 3 led to identification of the brain-penetrant compound, 5. We show that KMO is dimeric, and that mutations at the dimeric interface abolish its activity. These results will provide insight for the drug discovery of additional blood-brain-barrier molecules, and help illuminate the complex biology behind single-pass transmembrane enzymes.
Over the past decade, DNA-encoded libraries (DELs) have emerged as a leading platform for small molecule drug discovery among pharmaceutical companies, biotech companies and academic drug hunters alike. This revolutionary technology has tremendous potential that is yet to be fully realized, as the exploration of therapeutically relevant chemical space is fueled by the ever-expanding repertoire of DNA-compatible reactions used to construct the libraries. Advances in direct coupling reactions, like photo-catalytic cross couplings, unique cyclizations such as the formation of 1,2,4-oxadiazoles, and new functional group transformations are valuable contributions to the DEL reaction toolkit, and indicate where future reaction development efforts should focus in order to maximize the productivity of DELs.
Herein we report the discovery of 2,4-1H-imidazole carboxamides as novel, biochemically potent, and kinome selective inhibitors of transforming growth factor β-activated kinase 1 (TAK1). The target was subjected to a DNA-encoded chemical library (DECL) screen. After hit analysis a cluster of compounds was identified, which was based on a central pyrrole-2,4-1H-dicarboxamide scaffold, showing remarkable kinome selectivity. A scaffold-hop to the corresponding imidazole resulted in increased biochemical potency. Next, X-ray crystallography revealed a distinct binding mode compared to other TAK1 inhibitors. A benzylamide was found in a perpendicular orientation with respect to the core hinge-binding imidazole. Additionally, an unusual amide flip was observed in the kinase hinge region. Using structure-based drug design (SBDD), key substitutions at the pyrrolidine amide and the glycine resulted in a significant increase in biochemical potency.
DNA-encoded small molecule libraries (DELs) have enabled discovery of novel inhibitors for many distinct protein targets of therapeutic value through screening of libraries with up to billions of unique small molecules. We demonstrate a new approach applying machine learning to DEL selection data by identifying active molecules from a large commercial collection and a virtual library of easily synthesizable compounds. We train models using only DEL selection data and apply automated or automatable filters with chemist review restricted to the removal of molecules with potential for instability or reactivity. We validate this approach with a large prospective study (nearly 2000 compounds tested) across three diverse protein targets: sEH (a hydrolase), ER{\alpha} (a nuclear receptor), and c-KIT (a kinase). The approach is effective, with an overall hit rate of {\sim}30% at 30 {\textmu}M and discovery of potent compounds (IC50 <10 nM) for every target. The model makes useful predictions even for molecules dissimilar to the original DEL and the compounds identified are diverse, predominantly drug-like, and different from known ligands. Collectively, the quality and quantity of DEL selection data; the power of modern machine learning methods; and access to large, inexpensive, commercially-available libraries creates a powerful new approach for hit finding.
From a screening of 27 106 covalent DNA-encoded compound library, a novel KRAS G12C chemical series has been identified. Original hit series compound displayed low µM covalent binding activity to KRAS G12C under GDP form associated with a k(inact)/Ki of 1,03 M-1.s-1, a stable electrophilic covalent warhead (T1/2 in 5mM GSH > 24h), +12°C stabilization Delta Tm in DSF assay and 3 µM IC50 value in GEF assay, while no detectable covalent binding to KRAS G12C under GTP form and to KRAS WT or KRAS G12D under GDP form. From 3 µM, it also induced significant pERK inhibition in H358 KRAS-G12C but not in A549 KRAS G12S NSCLC cell lines. Unique binding mode to SII pocket was demonstrated by Xray crystallography. Multi-parametric and structural biology guided chemical optimization yielded potent KRAS G12C lead compounds which combine k(inact)/Ki > 500 M-1.s-1, Delta Tm=20°C, 10 nM range pERK IC50 values with correlated direct KRAS G12C selective covalent modification. They also exhibited 100 nM range KRAS G12C allele-specific anti-proliferative activity and triggered significant apoptosis induction. In vivo treatment of mice bearing H358 tumour xenografts through oral route with optimized candidates showed a marked and prolonged inhibition of both pERK and DUSP6 mRNA as well as consistent direct KRAS-G12C covalent modification as evidenced by LC-MS in tumor samples. Altogether, these data demonstrate the power of DNA-encoded library approach to deliver potential drug candidates with selective cysteine-targeted irreversible mechanism of action on challenging oncology targets such as KRAS. Citation Format: Gary McCort, Rosalia Arrebola, Loreley Calvet, Baptiste Ronan, Fabrice Vergne, Francis Duffieux, Alexey Rak, Isabelle Meaux, David Papin, Florence Fassy, Cecile Delorme, Magali Matthieu, Jean-Paul Nicolas, Christophe Marcireau, Valerie Steier, Pierre-Yves Abecassis, Valerie Czepczor, Heather A. Thomson, Christopher D. Hupp, J.P. Guilinger, Ying Zhang, Anthony D. Keefe, John W. Cuozzo, Julie Liu, Laurent Debussche. Discovery of novel potent allele-selective KRAS-G12C covalent inhibitors stemming from DNA-encoded library [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2019; 2019 Mar 29-Apr 3; Atlanta, GA. Philadelphia (PA): AACR; Cancer Res 2019;79(13 Suppl):Abstract nr 3070.
Tumors utilize many different escape mechanisms to evade anti-tumor immune responses. Xios Therapeutics has screened X-Chem’s proprietary 200-billion molecule DNA-encoded library against several immuno-oncology (IO) targets addressing T-cell centric, myeloid immunity and onco-metabolite pathways. Adenosine, for example, is a potent immunosuppressive metabolite, and the ecto-5-nucleotidase (a.k.a. CD73), which catalyzes the conversion of AMP to adenosine, is the rate limiting enzyme for the production of extracellular adenosine in the tumor microenvironment. Hence, CD73 and/or the downstream adenosine receptors are considered attractive targets for IO drug discovery. Likewise, the characteristics of tumor-associated macrophages (TAMs) have fueled interest in therapeutically targeting the colony-stimulating factor 1 axis (CSF1R). Here, we exemplify and enumerate the diversity, selectivity and physiochemical properties of selected hit-to-lead compounds identified from our DNA-encoded library screens of CD73, the adenosine A2A receptor and CSF1R. In the context of the immune-suppressive purinergic pathway, we have integrated structural biology, medicinal chemistry and clinical pathology evaluation of target expression across tumor types and developed both A2A selective and dual A2A/A2B selective receptor antagonists. From a DNA-encoded library screen, we have identified novel sub-micromolar ligands, which binds to CD73 in an ‘open conformation’ revealed by the co-crystal structure of X6034 (EC50 = 310 nM) in complex with CD73. Interestingly, an inorganic phosphate molecule (Pi) that is structurally shown to be co-present in the active site, illustrates the novelty of these inhibitors, which are chemically distinct from currently reported ADP/AMP substrate analogs. Finally, using tumor tissue microarrays and in situ cell hybridization (RNA-Scope; Advanced Cell Diagnostics), we have explored the co-expression pattern of pathway targets across a subset of immune cells. Informed by the tissue expression pattern of A2AR (primarily CD3+ T-Cells) and A2BR (primarily CD33+ myeloid cells), we compared the ability of equipotent A2A and dual A2A/A2B adenosine receptor antagonists to reverse the effect of NECA, a nonhydrolyzable analog of adenosine, on the maturation and activation of dendritic cells (DC). Starting with the differentiation of human immature DC, we demonstrate the added benefit of dual A2A/A2B inhibitors vs A2A selective inhibitors on relieving immunosuppression of myeloid cells. To conclude, the combination of all these data, together with the productivity of the DNA-encoded library screens for identifying novel, drug like chemical matter on challenging targets like CD73, provide a unique opportunity for potentially harnessing the full power of immunotherapy for cancer. Citation Format: Andrew J. McRiner, Jannik N. Andersen, Lynette A. Fouser, Junyi Zhang, Kaan Certel, John Cuozzo, Betty Chan, Ragunath Chandran, Matt Clark, Diana Gikunju, Christopher D. Hupp, Anthony D. Keefe, Julie Liu, Yanbin Liu, Michael Monteiro, Allison Olszewski, Moritz Von Rechenberg, Daniel Resnicow, Heather A. Thomson, Dawn M. Troast, Zooey Wang, Neil Westlund, Ying Zhang, Fei Zhou, Xiaotian Zhu, Michael Briskin, Diala Ezzeddine. Novel, potent, and selective small-molecule inhibitors modulating immuno-oncology targets CD73, A2A/A2B adenosine receptors and CSF1R discovered via DNA-encoded library screening [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2019; 2019 Mar 29-Apr 3; Atlanta, GA. Philadelphia (PA): AACR; Cancer Res 2019;79(13 Suppl):Abstract nr 4453.
We have identified and characterized novel potent inhibitors of Bruton's tyrosine kinase (BTK) from a single DNA-encoded library of over 110 million compounds by using multiple parallel selection conditions, including variation in target concentration and addition of known binders to provide competition information. Distinct binding profiles were observed by comparing enrichments of library building block combinations under these conditions; one enriched only at high concentrations of BTK and was competitive with ATP, and another enriched at both high and low concentrations of BTK and was not competitive with ATP. A compound representing the latter profile showed low nanomolar potency in biochemical and cellular BTK assays. Results from kinetic mechanism of action studies were consistent with the selection profiles. Analysis of the co-crystal structure of the most potent compound demonstrated a novel binding mode that revealed a new pocket in BTK. Our results demonstrate that profile-based selection strategies using DNA-encoded libraries form the basis of a new methodology to rapidly identify small molecule inhibitors with novel binding modes to clinically relevant targets.
•Methods generating native phosphodiester ligation junctions.•Methods generating modified ligation junctions that are polymerase-traversable.•Methods generating readable modified ligation junctions that are not polymerase-traversable.•Methods that have been used for the successful discovery of therapeutic protein target inhibitors.
A new synthetic method for the removal of the 4,5-bridged ether moiety of several opioids has been developed. This process offers a faster, simpler synthetic route to obtain the morphinone scaffold in high yields without the need for protection of the ketone moiety.
Reactions that create a quaternary stereocenter offer a wealth of synthetic utility and are often needed to provide access to the structural diversity of stereocenters found in natural products and biologically important molecules. We have developed a new 1-ethyl-3-(3-dimethylaminopropyl)carbodiimide hydrochloride (EDCI)-mediated oxazole rearrangement that affords quaternary 5,5-(aryl, allyl)-substituted hydantoins found in many biologically significant compounds. Furthermore, these quaternary hydantoins can be chemically manipulated to yield the corresponding quaternary imidazolones, which is a unique scaffold found in a compound from the tunicate Dendrodoa grossularia. Herein, we report the scope of this novel rearrangement and the proposed mechanism and showcase its utility through the total synthesis of a marine alkaloid from D. grossularia and two analogues.
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