The discovery, of a series of 2-Cl-5-heteroaryl-benzamide antagonists of the P2X7 receptor via parallel medicinal chemistry is described. Initial analogs suffered from poor metabolic stability and low Vdss. Multi parametric optimization led to identification of pyrazole 39 as a viable lead with excellent potency and oral bioavailability. Further attempts to improve the low Vdss of 39 via introduction of amines led to analogs 40 and 41 which maintained the favorable pharmacology profile of 39 and improved Vdss after iv dosing. But these analogs suffered from poor oral absorption, probably driven by poor permeability.
CD40 is a member of the TNF family of receptors that has been shown to play a crucial role in enhancing dendritic cell activity and fostering anti-tumor immune responses. In this study, we demonstrate the in vitro properties and in vivo efficacious activity of the CD40 agonist antibody, CP-870,893. CP-870,893 is a fully human, IgG2 antibody that selectively interacts with CD40 at a site distinct from its ligand-binding region with a KD of 0.4 nM. It enhances the expression of MHC class II, CD54, CD86, and CD23 on human B cells in vitro. CP-870,893 also enhances dendritic cell activity as evidenced by cytokine secretion (IL-12, IL-23, IL-8), the upregulation of CD86 and CD83, and the ability to prime T cells to secrete IFNγ. In SCID-beige mice, a single parenteral injection of CP-870,893 was therapeutically effective against several CD40(pos) human tumors (B-cell lymphoma, breast, colon, and prostate) indicating direct effects on tumor cell survival and/or growth. When mice were co-implanted with human T cells and dendritic cells, the activity of CP-870,893 against CD40(pos) tumors increased, and efficacy was also observed against CD40(neg) and CD40(low) tumors demonstrating the ability of CP-870,893 to enhance anti-tumor immune function in vivo. These studies suggest that CP-870,893 has the potential to be efficacious against a wide range of tumor types through both direct and immune-mediated effects.
High throughput screening (HTS) of our compound file provided an attractive lead compound with modest P2X7 receptor antagonist potency and high selectivity against a panel of receptors and channels, but also with high human plasma protein binding and a predicted short half-life in humans. Multi-parameter optimization was used to address the potency, physicochemical and pharmacokinetic properties which led to potent P2X7R antagonists with good disposition properties. Compound 33 (CE-224,535) was advanced to clinical studies for the treatment of rheumatoid arthritis.
LB-147 Over expression and amplification of Aurora-2, a key regulator of mitosis plays important but distinct roles in the G2 and M phases of the cell cycle and has been reported in different tumor types including breast, colon, pancreatic, ovarian and gastric cancer. We report herein the discovery and preclinical profile of PF-3814735, a novel heretofore unreported pyrimidine scaffold based ATP-competitive, reversible inhibitor of Aurora-1 and 2 kinases. SAR at the C2 and C4 positions of the pyrimidine scaffold led to a series with great in vitro potency. Subsets of analogs from this series that demonstratedexcellent in vitro ADME profile were selected for further in vivo pharmacological and ADME profiling. These efforts led to the discovery of PF-3814735, which inhibits Aurora-1 kinase with an IC50 value of 0.8 nM and Aurora-2 kinase with an IC50 value of 5 nM and has corresponding potent cellular and biochemical activity. Oral administration of PF-3814735 demonstrated in vivo pharmacology and high oral bioavailability (%F>50). Treatment with PF-3814735 resulted in significant tumor growth inhibition at tolerable doses in multiple tumor xenograft models. In summary, we will be describing the chemistry and SAR that led to the discovery of a potent Aurora kinase inhibitor, PF-3814735 that is the clinical candidate and is currently in Phase I trials. Design,synthesis, inhibitor kinase and cell activity, kinase selectivityprofile, ADME as well as inhibitor chemical structure will be presented.
The current study examined the bioactivation potential of a nonpeptidyl thrombopoietin receptor agonist, 1-(3-chloro-5-((4-(4-fluoro-3-(trifluoromethyl)phenyl)thiazol-2-yl)carbamoyl)pyridine-2-yl)piperidine-4-carboxylic acid (1), containing a 2-carboxamido-4-arylthiazole moiety in the core structure. Toxicological risks arising from P450-catalyzed C4-C5 thiazole ring opening in 1 via the epoxidation-->diol sequence were alleviated, since mass spectrometric analysis of human liver microsome and/or hepatocyte incubations of 1 did not reveal the formation of reactive acylthiourea and/or glyoxal metabolites, which are prototypic products derived from thiazole ring scission. However, 4-(4-fluoro-3-(trifluoromethyl)phenyl)thiazol-2-amine (2), the product of hydrolysis of 1 in human liver microsomes, hepatocytes, and plasma, underwent oxidative bioactivation in human liver microsomes, since trapping studies with glutathione led to the formation of two conjugates derived from the addition of the thiol nucleophile to 2 and a thiazole- S-oxide metabolite of 2. Mass spectral fragmentation and NMR analysis indicated that the site of attachment of the glutathionyl moiety in both conjugates was the C5 position in the thiazole ring. Based on the structures of the glutathione conjugates, two bioactivation pathways are proposed, one involving beta-elimination of an initially formed hydroxylamine metabolite and the other involving direct two-electron oxidation of the electron-rich 2-aminothiazole system to electrophilic intermediates. This mechanistic insight into the bioactivation process allowed the development of a rational chemical intervention strategy that involved blocking the C5 position with a fluorine atom or replacing the thiazole ring with a 1,2,4-thiadiazole group. These structural changes not only abrogated the bioactivation liability associated with 1 but also resulted in compounds that retained the attractive pharmacological and pharmacokinetic attributes of the prototype agent.
The synthesis, biological activity, and pharmacokinetic profile of CCR1 antagonists are described.
A series of pyrimidine benzamide-based thrombopoietin receptor agonists is described. The lead molecule contains a 2-amino-5-unsubstituted thiazole, a group that has been associated with idiosyncratic toxicity. The potential for metabolic oxidation at C-5 of the thiazole, the likely source of toxic metabolites, was removed by substitution at C-5 or by replacing the thiazole with a thiadiazole. Potency in the series was improved by modifying the substituents on the pyrimidine and/or on the thiazole or thiadiazole pendant aryl ring. In vivo examination revealed that compounds from the series are not highly bioavailable. This is attributed to low solubility and poor permeability.
2539 Background: CD40 is expressed on B-cells, monocytes, dendritic cells, other normal tissues and tumors. Previous studies showed that CD40 stimulation enhances antigen presentation, breaks tolerance, bypasses T-cell help, and induces apoptosis in CD40 pos tumor cells. We report the in vitro activity and primate pharmacokinetics of a human anti-CD40 agonist antibody, CP-870,893, currently in clinical trials for the treatment of cancer. Methods: CP-870,893 was identified as a CD40 agonist antibody by screening lead molecules generated through the Abgenix Xenomouse® platform. Agonist activity was determined using upregulation of B-cell and monocytes derived dendritic cell surface markers, as well as dendritic cell IL-12 induction. BIAcore and equilibrium binding were utilized to determine affinity, and competition studies with CD40L were conducted on BIAcore. CP-870,893 was administered to cynomolgus monkeys i.v. at various doses, serum antibody levels were evaluated over time in an ELISA assay, and B-cell markers were monitored by FACS. Results: CP-870,893 (IgG2, kappa) binds CD40 with sub-nanomolar affinity, and does not block binding of CD40L. When human whole blood is incubated with CP-870,893, upregulation of key surface molecules involved in antigen presentation (MHC Class II, CD80, CD86, CD23 and ICAM-1) is observed with an EC50 of 5–50 ng/ml. Human monocytes derived dendritic cells, when stimulated with CP-870,893, upregulate activation markers (MHC Class II, CD80 and CD83) with an EC50 of 100–300 ng/ml, and secrete high levels of IL-12p40. In the presence of a second stimulus, such as LPS, human dendritic cells also secreted bioactive IL12-p70 when stimulated with CP-870,893 (EC50 ∼ 150 ng/ml). In addition, a CD40 positive human B-cell tumor line, when stimulated with CP-870,893, becomes susceptible to killing by human CTLs. In cynomolgus monkey studies, the clearance of CP-870,893 decreased with increasing dose. Circulating B-cell numbers decreased, and surface molecules were upregulated on B-cells. Conclusions: These data support the potential utility of CP-870,893 as an immune enhancing agent in cancer immunotherapy, by activating antigen presenting cells, and by enhancing the immunogenicity of CD40 positive tumor cells. [Table: see text]
We previously described the in vitro characteristics of the potent and selective CCR1 antagonist, CP-481,715. In addition to being selective for CCR1 vs other chemokine receptors, CP-481,715 is also specific for human CCR1 (hCCR1), preventing its evaluation in classical animal models. To address this, we generated mice whereby murine CCR1 was replaced by hCCR1 (knockin) and used these animals to assess the anti-inflammatory properties of CP-481,715. Cells isolated from hCCR1 knockin mice were shown to express hCCR1 and migrate in response to both murine CCR1 and hCCR1 ligands. Furthermore, this migration is inhibited by CP-481,715 at dose levels comparable to those obtained with human cells. In animal models of cell infiltration, CP-481,715 inhibited CCL3-induced neutrophil infiltration into skin or into an air pouch with an ED50 of 0.2 mg/kg. CP-481,715 did not inhibit cell infiltration in wild-type animals expressing murine CCR1. In a more generalized model of inflammation, delayed-type hypersensitivity, CP-481,715 significantly inhibited footpad swelling and decreased the amount of IFN-gamma and IL-2 produced by isolated spleen cells from sensitized animals. It did not, however, induce tolerance to a subsequent challenge. These studies illustrate the utility of hCCR1 knockin animals to assess the activity of human specific CCR1 antagonists; demonstrate the ability of the CCR1 antagonist CP-481,715 to inhibit cell infiltration, inflammation, and Th1 cytokine responses in these animals; and suggest that CP-481,715 may be useful to modulate inflammatory responses in human disease.
The synthesis, biological activity, and pharmacokinetic profile of novel CCR1 antagonists are described.
The chemokines CCL3 and CCL5, as well as their shared receptor CCR1, are believed to play a role in the pathogenesis of several inflammatory diseases including rheumatoid arthritis, multiple sclerosis, and transplant rejection. In this study we describe the pharmacological properties of a novel small molecular weight CCR1 antagonist, CP-481,715 (quinoxaline-2-carboxylic acid [4(R)-carbamoyl-1(S)-(3-fluorobenzyl)-2(S), 7-dihydroxy7- methyloctyl] amide). Radiolabeled binding studies indicate that CP-481,715 binds to human CCR1 with a K-d of 9.2 nM and displaces I-125-labeled CCL3 from CCR1-transfected cells with an IC50 of 74 nM. CP-481,715 lacks intrinsic agonist activity but fully blocks the ability of CCL3 and CCL5 to stimulate receptor signaling (guanosine 5'-O-(thiotriphosphate) incorporation; IC50 = 210 nM), calcium mobilization (IC50 = 71 nM), monocyte chemotaxis (IC50 = 55 nM), and matrix metalloproteinase 9 release (IC50 = 54 nM). CP- 481,715 retains activity in human whole blood, inhibiting CCL3-induced CD11b up-regulation and actin polymerization (IC50 = 165 and 57 nM, respectively) on monocytes. Furthermore, it behaves as a competitive and reversible antagonist. CP- 481,715 is > 100-fold selective for CCR1 as compared with a panel of G-protein-coupled receptors including related chemokine receptors. Evidence for its potential use in human disease is suggested by its ability to inhibit 90% of the monocyte chemotactic activity present in 11/15 rheumatoid arthritis synovial fluid samples. These data illustrate that CP- 481,715 is a potent and selective antagonist for CCR1 with therapeutic potential for rheumatoid arthritis and other inflammatory diseases.
Knowledge of the sequence of a bioactive protein (angiotensinogen) and the availability of a natural product inhibitor lead (pepstatin) were the starting point for discovery of potent penta- and hexapeptide renin inhibitors. Study of the metabolism and disposition of these substances forced the discovery of simpler inhibitors leading to the discovery of oral activity in Terlakiren (22). Modification of physical properties led to the synthesis of aminopiperidine 30, which was identified by oral efficacy profiling. Structural modification to give enzymatic stability produced the bioavailable benzylsuccinate inhibitor 34. Its bioactive monomethylamine metabolite (35, CP-108,671) was subsequently found to have uniformly high oral bioavailability and activity in various species including primates.