The severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2), the causative agent of COVID-19, has led to a pandemic, that continues to be a huge public health burden. Despite the availability of vaccines, there is still a need for small-molecule antiviral drugs. In an effort to identify novel and drug-like hit matter that can be used for subsequent hit-to-lead optimization campaigns, we conducted a high-throughput screening of a 160 K compound library against SARS-CoV-2, yielding a 1-heteroaryl-2-alkoxyphenyl analog as a promising hit. Antiviral profiling revealed this compound was active against various beta-coronaviruses and preliminary mode-of-action experiments demonstrated that it interfered with viral entry. A systematic structure–activity relationship (SAR) study demonstrated that a 3- or 4-pyridyl moiety on the oxadiazole moiety is optimal, whereas the oxadiazole can be replaced by various other heteroaromatic cycles. In addition, the alkoxy group tolerates some structural diversity.
To suppress serious influenza infections in persons showing insufficient protection from the vaccines, antiviral drugs are of vital importance. There is a need for novel agents with broad activity against influenza A (IAV) and B (IBV) viruses and with targets that differ from those of the current antivirals. We here report a new small molecule influenza virus inhibitor referred to as CPD A (chemical name: N-(pyridin-3-yl)thiophene-2-carboxamide). In an influenza virus minigenome assay, this non-nucleoside compound inhibited RNA synthesis of IAV and IBV with EC50 values of 2.3 μM and 2.6 μM, respectively. Robust in vitro activity was noted against a broad panel of IAV (H1N1 and H3N2) and IBV strains, with a median EC50 value of 0.20 μM, which is 185-fold below the 50% cytotoxic concentration. The action point in the viral replication cycle was located between 1 and 5 h p.i., showing a similar profile as ribavirin. Like this nucleoside analogue, CPD A was shown to cause strong depletion of the cellular GTP pool and, accordingly, its antiviral activity was antagonized when this pool was restored with exogenous guanosine. This aligns with the observed inhibition in a cell-based IMP dehydrogenase (IMPDH) assay, which seems to require metabolic activation of CPD A since no direct inhibition was seen in an enzymatic IMPDH assay. The combination of CPD A with ribavirin, another IMPDH inhibitor, proved strongly synergistic. To conclude, we established CPD A as a new inhibitor of influenza A and B virus replication and RNA synthesis, and support the potential of IMPDH inhibitors for influenza therapy with acceptable safety profile.
Inhibition of mitochondrial metabolism for treatment-resistant tumors has attracted renewed attention. Pharmacologic inhibition of mitochondrial oxidative phosphorylation (OXPHOS) is efficacious in preclinical models of chemo-resistant AML, glycolysis-deficient glioma, and Swi/Snf mutant lung cancer, and is associated with an apparent robust safety index (Molina et al., 2018, Nat Med 24: 1036-1046; Lissanu Deribe et al., 2018, Nat Med 24: 1047-1057). In addition, immune-suppressive cell types in the tumor micro-environment depend on OXPHOS metabolism, including CD4+ regulatory T-cells (Tregs), whereas tumor-infiltrating effector T-cells instead rely on glycolytic metabolism (Angelin et al., 2017, Cell Metab. 25: 1282-1293). Here, we have used a phenotypic drug discovery approach to identify selective inhibitors of mitochondrial -but not glycolytic- tumor cell metabolism. Based on initial hits derived from a high-throughput screening campaign, a chemical series was optimized to achieve single digit nM potency (best IC50= 2 nM) in targeting OXPHOS-dependent cancer cells (grown on lactate as sole carbon source) but not glycolytic cells (grown on glucose; IC50 > 10 microM). Target deconvolution within this chemical series revealed 2 distinct mechanisms. One chemical subseries are direct inhibitors of the mitochondrial enzyme, dihydroorotate dehydrogenase (DHODH). Consistent with previous reports on DHODH inhibitors, these compounds potently impair AML cell proliferation (best IC50= 10nM) through induction of myeloid cell differentiation -a trait that can be rescued by providing exogenous uridine to the cell cultures (IC50 > 10 microM). A second chemically distinct subset of compounds inhibit mitochondrial OXPHOS, but does not inhibit DHODH. As expected, these compounds selectively target OXPHOS-dependent cancer cell lines, and display a robust selectivity window (determined in glycolysis-dependent cell lines). Moreover, these inhibitors do not affect a mixed-lymphocyte reaction (MLR) assay. In-depth metabolomic profiling in cancer cells fueled by glucose, lactate or glutamine, the precise molecular target of these compounds, and further in vivo characterization of these compounds will be presented. Finally, the unique opportunity to simultaneously inhibit both DHODH and OXPHOS using dual inhibitors will be evaluated in chemo-resistant AML models. Citation Format: Matthias Versele, Philippe Selhorst, Kristine Metzger, Marnik Nijs, Hugo Klaassen, Amuri Kilonda, Damien Marchand, Philippe Arzel, Dominique Lambin, Jean-Christophe Vanherck, Arnaud Marchand, Patrick Chaltin, Cyril Corbet, Olivier Feron. Discovery of novel DHODH and OXPHOS inhibitors [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 3865.