BLU-5937 is a small molecule that was shown to be a potent, selective and non-competitive P2X3 homotrimeric receptor antagonist. P2X3 receptors are ATP ion-gated channels located on primary afferent neurons. ATP released from damaged or inflamed tissues in the airways acts on P2X3 receptors of primary afferent neurons, triggering depolarization and action potentials that are transmitted centrally and interpreted as urge to cough. There are strong preclinical and clinical evidence supporting the role of P2X3 receptors in hypersensitization of the cough reflex, leading to chronic cough. By inhibiting P2X3 receptors on the primary sensory neurons, BLU-5937 would inhibit the hypersensitization of the cough reflex and, hence, the exaggerated cough experienced in chronic cough patients. BLU-5937 is being developed for the treatment of unexplained, refractory chronic cough. The high potency and selectivity of BLU-5937 for P2X3 homotrimeric receptors was demonstrated in vitro by inhibiting alpha beta-meATP-evoked P2X3 or P2X2/3 receptor activity in cloned human hP2X3 and hP2X2/3 channels expressed in mammalian cells. The IC50 of BLU-5937 for hP2X3 homotrimeric and hP2X2/3 heterotrimeric receptors was established at 25 nM and > 24 mu M, respectively. Furthermore, BLU-5937 (500 nM) was able to block alpha beta-meATP-induced sensitization and firing activity of isolated primary nociceptors in rat dorsal root ganglions (DRG5), through P2X3 homotrimeric receptor antagonism. In a guinea pig cough model, BLU-5937 (0.3, 3 and 30 mg/kg, oral) significantly reduced, in a dose-dependent fashion, the histamine-induced enhancement in the number of citric acid-induced coughs. BLU-5937 (3 and 30 mg/kg, oral) was also shown to reduce significantly and dose-dependently the ATP-induced enhancement of citric acid-induced coughs in the guinea pig. These anti-tussive effects were obtained at a plasma concentration known to block P2X3 homotrimeric receptors, but at concentration 50-fold lower than that required to block P2X2/3 heterotrimeric receptors. These results indicate that the anti-tussive effect of BLU-5937 is primarily mediated through the inhibition of P2X3 homotrimeric receptors. In a rat behavioral taste model, BLU-5937 (10-20 mg/kg, IP) did not alter taste perception as compared to control animals. In the same experiment, N-00588 (10-20 mg/kg, IP), a weakly selective antagonist for P2X3 versus P2X2/3 receptors, had a significant inhibitory effect on taste perception. Pharmacokinetic analysis of drug plasma concentrations showed that BLU-5937 did not affect taste function at concentrations up to 30 times the IC50 for P2X3. These results suggest that N-00588 achieved systemic concentration that blocked P2X3 and P2X2/3 receptors expressed on gustatory nerve ending innervating taste buds. The lack of effect of BLU-5937, even at high doses, on taste perception may be attributed to its higher selectivity for the P2X3 versus P2X2/3 receptors on the taste buds. The safety, tolerability and pharmacokinetic profile of BLU-5937 was assessed in a battery of preclinical studies and have revealed that BLU-5937 exhibits excellent drug-like characteristics, including good oral bioavailability, low predicted clearance in human, no blood-brain barrier permeability and high safety margin versus human predicted efficacious exposure. BLU-5937 is currently in clinical phase I development stage. In conclusion, BLU-5937 was selected as a drug candidate for the treatment of chronic cough due to its high potency and selectivity for P2X3 homotrimeric receptors, strong anti-tussive effects, excellent tolerability and predicted pharmacokinetic properties in humans.
BLU-5937 is a potent P2X3 receptor antagonist that is currently in Phase 2 clinical trial for the treatment of chronic cough. It is hypothesized that sensitization of the afferent neurons expressing P2X3 receptors may be involved in chronic itch (CI) and that a P2X3 antagonist could be effective in the treatment of pruritus. Electrophysiology studies using mouse DRG neurons were performed to determine if pruritogens (β alanine, chloroquine, serotonin and histamine) can cause sensitization of sensory neurons expressing P2X3 and whether this sensitization is enhanced by P2X3 agonists (ATP or α,βmeATP) and blocked by BLU-5937. In addition, the inhibitory effect of BLU-5937 on scratching was studied in a chloroquine (CQ) + α,βmeATP-induced acute itch (AI) mouse model. Finally, we evaluated the effect of BLU-5937 in CI mouse models of dry skin (DS w/acetone-ether-water), allergic contact dermatitis (ACD w/dinitrofluorobenzene) and atopic dermatitis (AD w/calcipotriol) along with changes in P2X3 mRNA in DRG and changes of P2X3 fiber density in the skin. All pruritogens induced sensitization of the DRG neurons and presence of a P2X3 agonist induced a synergistic effect. The increase of excitability was blocked by BLU-5937. In AI, αβmeATP did not trigger itch by itself, but caused a dose-dependent increase of scratching behaviour with CQ, which was inhibited by BLU-5937. Finally, BLU-5937 inhibited scratching in DS and AD models, while no effect was observed in ACD with either BLU-5937 or the positive control. Although P2X3 transcription levels in DRG were not affected in CI, the density of P2X3 fiber in the skin was increased in DS and AD, but not in ACD, which may explain the anti-pruritic effects of BLU-5937 in DS and AD. We present, for the first time, evidence that the ATP-induced hypersensitization mediated by P2X3 receptors in cutaneous C-fibers plays a role in chronic itch and that BLU-5937 may represent a novel treatment modality for chronic pruritus.
Lomibuvir (1) is a non-nucleoside, allosteric inhibitor of the hepatitis C virus NS5B polymerase with demonstrated clinical efficacy. Further development efforts within this class of inhibitor focused on improving the antiviral activity and physicochemical and pharmacokinetic properties. Recently, we reported the development of this series, leading to compound 2, a molecule with comparable potency and an improved physicochemical profile relative to 1. Further exploration of the amino amide-derived side chain led to a series of lactam derivatives, inspired by the X-ray crystal structure of related thiophene carboxylate inhibitors. This series, exemplified by 12f, provided 3-5-fold improvement in potency against HCV replication, as measured by replicon assays. The synthesis, structure-activity relationships, in vitro ADME characterization, and in vivo evaluation of this novel series are discussed.
The hepatitis C viral proteins NS3/4A protease, NS5B polymerase, and NS5A are clinically validated targets for direct-acting antiviral therapies. The NS5B polymerase may be inhibited directly through the action of nucleosides or nucleotide analogues or allosterically at a number of well-defined sites. Herein we describe the further development of a series of thiophene carboxylate allosteric inhibitors of NS5B polymerase that act at the thumb pocket 2 site. Lomibuvir (1) is an allosteric HCV NS5B inhibitor that has demonstrated excellent antiviral activity and potential clinical utility in combination with other direct acting antiviral agents. Efforts to further explore and develop this series led to compound 23, a compound with comparable potency and improved physicochemical properties.
The discovery of non-symmetric thienoimidazole-containing HCV NS5A inhibitors is described. The inhibitors herein reported display high potencies against both genotype 1a and 1b. In this follow-up manuscript, we discuss the importance of the linker aromaticity to achieve high potency, particularly against genotype 1a.
1-Aminobenzotriazole (ABT) is regularly used in vivo as a nonspecific and irreversible cytochrome P450 inhibitor to elucidate the role of metabolism on the pharmacokinetic profile of xenobiotics. However, few reports have considered the recent findings that ABT can alter drug absorption or have investigated the possible differential inhibition of ABT on intestinal and hepatic metabolism. To address these uncertainties, pharmacokinetic studies under well controlled and defined ABT pretreatment conditions (50 mg/kg, 1 hour ABT i.v. and 16 hours ABT p.o.) were conducted prior to the oral administration of metoprolol, a permeable P450 probe that undergoes extensive intestinal and hepatic metabolism. The pharmacokinetic profile of metoprolol was affected differently by the two ABT pretreatments. An increase in area under the curve of 16-fold with ABT p.o. and 6.5-fold with ABT i.v. was observed compared with control. Based on in vitro studies, this difference could not be attributed to a differential inhibition of intestinal and hepatic metabolism. In the ABT i.v. pretreatment group, the increase in area under the curve was also associated with a prolonged time at maximal concentration (24-fold versus control), suggesting a delay in absorption. This was further confirmed by the administration of a charcoal meal, which resulted in a 7-fold increase in stomach weights in the 1-hour ABT pretreated groups compared with the untreated or 16-hour ABT pretreated rats. Based on these results, we recommend pretreating rats with ABT p.o. 16 hours before the administration of a test compound to preserve the inhibitory effect on intestinal and hepatic metabolism and avoid the confounding effect on drug absorption.
The discovery of C2-symmetric bis-thienoimidazoles HCV NS5A inhibitors is herein reported. Two straightforward approaches to access the requisite diyne and biphenyl linker moieties are described. This study revealed the paramount importance of the aromatic character of the linker to achieve high genotype 1a potency.
Inhibitors of the HCV NS5A nonstructural protein are showing promising clinical potential in the treatment of hepatitis C when used in combination with other direct-acting antiviral agents. Current NS5A clinical candidates such as daclatasvir, ledipasvir, and ombitasvir share a common pharmacophore that features a pair of (S)-methoxycarbonylvaline capped pyrrolidines linked to various cores by amides, imidazoles and/or benzimidazoles. In this Letter, we describe the evaluation of NS5A inhibitors which contain alternative heteroaromatic replacements for these amide mimetics. The SAR knowledge gleaned in the optimization of scaffolds containing benzoxazoles was parlayed toward the identification of potent NS5A inhibitors containing other heteroaromatic replacements such as indoles and imidazopyridines.
The treatment of HCV with highly efficacious, well-tolerated, interferon-free regimens is a compelling clinical goal. Trials employing combinations of direct-acting antivirals that include NS5A inhibitors have shown significant promise in meeting this challenge. Herein, we describe our efforts to identify inhibitors of NS5A and report on the discovery of benzimidazole-containing analogs with subnanomolar potency against genotype 1a and 1b replicons. Our SAR exploration of 4-substituted pyrrolidines revealed that the subtle inclusion of a 4-methyl group could profoundly increase genotype 1a potency in multiple scaffold classes.