Uncontrolled activation of the coagulation cascade contributes to the pathophysiology of several conditions, including acute and chronic lung diseases. Coagulation zymogens are considered to be largely derived from the circulation and locally activated in response to tissue injury and microvascular leak. Here we report that expression of coagulation factor X (FX) is locally increased in human and murine fibrotic lung tissue, with marked immunostaining associated with bronchial and alveolar epithelia. FXa was a potent inducer of the myofibroblast differentiation program in cultured primary human adult lung fibroblasts via TGF-beta activation that was mediated by proteinase-activated receptor-1 (PAR1) and integrin alpha(v)beta(5) PAR1. alpha(v)beta(5), and alpha-SMA colocalized to fibrotic foci in lung biopsy specimens from individuals with idiopathic pulmonary fibrosis. Moreover, we demonstrated a causal link between FXa and fibrosis development by showing that a direct FXa inhibitor attenuated bleomycin-induced pulmonary fibrosis in mice. These data support what we believe to be a novel pathogenetic mechanism by which FXa, a central proteinase of the coagulation cascade, is locally expressed and drives the fibrotic response to lung injury. These findings herald a shift in our understanding of the origins of excessive procoagulant activity and place PAR1 central to the cross-talk between local procoagulant signaling and tissue remodeling.
Antiplatelet drugs are used to prevent aberrant platelet activation in pathophysiologic conditions such as myocardial infarction and ischemic stroke. The key role that ADP plays in this process has led to the development of antiplatelet drugs that target the P2Y12 receptor. The aim of this study was to characterize the pharmacodynamic (PD) and pharmacokinetic (PK) properties of the novel P2Y12 receptor antagonists, BX 667 and BX 048. BX 667 blocks ADP-induced platelet aggregation in human, dog and rat blood (IC50=97, 317 and 3000 nM respectively). BX 667 had nominal effects on collagen-induced aggregation and weakly inhibited arachidonic acid-induced aggregation. BX 667 has an active metabolite, BX 048, that also potently inhibits ADP-induced aggregation (IC50=290 nM) in human blood. BX 667 was shown to have high oral bioavailability in both dog and rat unlike BX 048. Administration of BX 667 resulted in a rapid and sustained inhibition of platelet aggregation where the extent and duration of platelet inhibition was directly proportional to circulating plasma levels. This report describes the PK/PD properties of BX 667 showing that it has the properties required for a potential antiplatelet therapeutic agent.
ADP plays a key role in platelet aggregation which has led to the development of antiplatelet drugs that target the P2Y12 receptor. The aim of this study was to characterize the effects of two novel P2Y12 receptor antagonists, BX 667 and its active metabolite BX 048, on platelets. BX 667 and BX 048 block the binding of 2MeSADP to platelets and antagonize ADP-induced platelet aggregation in human, dog and rat washed platelets. Both compounds were shown to be reversible inhibitors of platelet aggregation. BX 048 prevents the decrease in cAMP induced by treatment of platelets with ADP. The specificity of BX 667 and BX 048 was demonstrated against cell lines expressing P2Y1 and P2Y6 as well as against a panel of receptors and enzymes. Taken all together these data show that both BX 048 and BX 667 are potent P2Y12 antagonists with high specificity which, in the accompanying paper are demonstrated to behave predictably in vivo.
Unscheduled DNA synthesis (UDS) has been used as an endpoint for measuring DNA damage in vitro and in vivo. Determination of UDS is regarded as a reliable genotoxicity assay by regulatory agencies including US FDA and EPA. In this study, we have developed an improved UDS assay to detect DNA damage and repair processes upon chemical exposure. We utilized a dual-labeling procedure in which fluorescent DAPI stained nuclei of live cells and [3H]thymidine labeled cells undergoing new DNA synthesis. The occurrence of UDS in cells was quantified by either manual nucleus counting or net intensity approaches. This assay was validated by testing known genotoxic compounds 2-acetylaminofluorene (2-AAF), ethylmethanesulfonate (EMS), and N-nitrosodimethy-lamine (NDL) in primary rat hepatocytes as well as in confluent human mammary epithelial cells. In addition, fluorescent labeling of nuclei DNA helped to distinguish apoptotic cells from non-apoptotic cells. Chemical effects on cell functions were also examined by conducting the cytotoxicity assay along with the UDS assay. To conclude, the dual-labeling UDS assay offers advantages of reduced subjective bias, increasing sensitivity and reproducibility. The assay is suitable for testing compounds in higher capacity format with much less compound needed.
There remains a high unmet medical need for a safe oral therapy for thrombotic disorders. The serine protease factor Xa (fXa), with its central role in the coagulation cascade, is among the more promising targets for anticoagulant therapy and has been the subject of intensive drug discovery efforts. Investigation of a hit from high-throughput screening identified a series of thiophene-substituted anthranilamides as potent nonamidine fXa inhibitors. Lead optimization by incorporation of hydrophilic groups led to the discovery of compounds with picomolar inhibitory potency and micromolar in vitro anticoagulant activity. Based on their high potency, selectivity, oral pharmacokinetics, and efficacy in a rat venous stasis model of thrombosis, compounds ZK 814048 (10b), ZK 810388 (13a), and ZK 813039 (17m) were advanced into development.
INTRODUCTION:Our goal was to establish versatile and high capacity assays to characterize activity and toxicity of chemotherapeutics. The major anti-cancer activity indicators of these agents included inhibition of proliferation and induction of apoptosis to cancer cells. In addition, cytotoxicity and myelosuppressive activity to normal cells were parameters to evaluate toxicity of these drugs.METHODS:Using a panel of cell-based assay systems, we investigated activity and toxicity properties of selected cancer drugs. Drug effects on a number of normal and cancer cell types from human origin were evaluated.RESULTS:Topoisomerase inhibitors (camptothecin, doxorubicin and etoposide) and microtubule inhibitors (colchicine and paclitaxel) showed anti-proliferation activity and induced apoptosis in MDA-231 cancer cells. Except for doxorubicin, these drugs had relatively low toxicity to normal cells because the dosage required for cytotoxicity EC(50) was >200-folds higher than the dosage for anti-proliferation EC(50) in cancer cells (MDA-231, HL60). However, these drugs were potent inducers of myelotoxicity in human bone marrow progenitor cells. In comparison, the DNA alkylating agents (cisplatin and carboplatin) were less potent proliferation inhibitors (EC(50)>10 microM) in MDA-231 cells and they were also less myelosuppressive.DISCUSSION:Using marketed drugs as examples, our study established a multiple assay platform for profiling in vitro properties of cancer drugs. In drug discovery, such a platform will help to expedite lead selection at early stage.
A series of thiophene-containing non-amidine factor Xa inhibitors is described. Simple methyl-substituted thiophene analogs were relatively weak inhibitors. However, introduction of hydrophilic substituents at C-4 or C-5 of the thiophene afforded inhibitors with low nanomolar potency. Optimization of the thiophene substituent at C-4 afforded subnanomolar inhibitors with improved in vitro anticoagulant activity. Incorporating basic amine substituents on the thiophene increased hydrophilicity and improved anticoagulant activity. The pharmacokinetic profile of one inhibitor was evaluated in dogs, and the X-ray crystal structure of this compound bound to factor Xa provides insight into the observed SAR for binding to factor Xa.
Chemo-therapeutic drugs act on cancerous and normal cells non-selectively and often cause organ impairments during treatment. Improving safety or reducing toxicity becomes an important challenge for developing better anticancer drugs. In the present study, effects of selected anticancer drugs (camptothecin, doxorubicin, colchicine, paclitaxel, cisplatin, and carboplatin) on cell viability and proliferation was investigated. The anti-proliferative activity of each drug on cancer cells (human hepatoma HepG2) and human primary renal proximal tubule cells (hRPTECs and LLC-PK1) was determined with the [(3)H]thymidine incorporation assay. Results indicated all six drugs blocked cell proliferation in cancer and normal cells. When the anti-proliferation potency was ranked in hRPTECs based on EC50 values, camptothecin is the most potent, followed by doxorubicin, paclitaxel, colchicine, cisplatin and carboplatin. Cytotoxicity of drugs to hRPTECs was assessed with the ATP bioluminescence assay. Doxorubicin and cisplatin were known to induce nephrotoxicity in vivo and they were indeed cytotoxic to hRPTECs in our study with EC50 values at 11.2 and 39.6 microM. All other drugs are not cytotoxic in the concentrations tested. These drugs typically displayed separation of EC50s between potency (anti-proliferation) and cytotoxicity. The dose separation provides a concentration range for each drug to act on cell proliferation without induction of significant cytotoxicity. Our results suggest that hRPTEC system can serve as an in vitro model for assessing potential nephrotoxicity of chemo-therapeutic drugs.
Benzothiophene-anthranilamide 1 (3-chloro-N-[2-[[(4-fluorophenyl)amino]carbonyl]-4-methylphenyl]benzo[b]thiophene-2-carboxamide) was discovered by high throughput screening to be a highly potent and selective non-amidine inhibitor of human factor Xa with a K(i) of 15+/-4nM. Compound 1 is a selective inhibitor of human factor Xa as suggested by the K(i)((app)) determined for nine other human serine proteases and bovine trypsin. The activity of reconstituted human prothrombinase complex was inhibited by compound 1 when assayed in physiological concentrations of the substrate prothrombin. However, 27-fold higher inhibitor concentrations were needed to achieve the same level of inhibition than were required for the inhibition of free factor Xa, due in part to non-specific binding of the inhibitor to phospholipid under the assay conditions. Failure to demonstrate enzymatic cleavage of compound 1 suggests that compound 1 is solely an inhibitor rather than a substrate for factor Xa. The inhibition of factor Xa by compound 1 was reversible upon dilution of the enzyme/inhibitor mixture. Analyses of the inhibition mechanism with Dixon, Cornish-Bowden, and Lineweaver-Burk plots showed that compound 1 is a linear mixed-type inhibitor with 5-fold higher affinity for free factor Xa than the factor Xa/substrate complex. The linear mixed-type inhibition suggests that compound 1 binds to the active site region of factor Xa, but its binding cannot be fully displaced by the substrate S2222 (1:1 mixture of N-benzoyl-Ile-Glu-Gly-Arg-p-nitroanilide and N-benzoyl-Ile-Glu(gamma-OMe)-Gly-Arg-p-nitroanilide hydrochloride). Thus, the inhibition mechanism for compound 1 is novel compared to most serine protease inhibitors including amidine-containing factor Xa inhibitors, which rely on binding to the S1 pocket of the enzyme active site. Compound 1 represents an attractive, novel structural template for further development of efficacious, safe, and potentially orally active human factor Xa inhibitors.
During drug discovery, assessment of renal safety for a compound is important for further development of a candidate drug. In this study, we describe an in vitro cell-based assay capable of discerning nephrotoxicity. Three cell types, two of kidney origin and one of liver origin, were used to examine the effects of nephrotoxins. The cell types were the porcine normal kidney tubular epithelial cell line (LLC-PK1), the primary human renal proximal tubular epithelial cells (hRPTEC) and the human liver cell line (HepG2). Cytotoxicity was measured using a luciferin/luciferase assay that measures cellular ATP levels. Four known nephrotoxins, 4-aminophenol, cisplatin, cyclosporin A and paraquat, were tested in this cell-based assay to evaluate cytotoxicity on drug exposure. Kidney-derived LLC-PK1 cells and hRPTECs were found to be sensitive to selected nephrotoxins while liver-derived HepG2 cells were insensitive. Human RPTEC cells obtained from three individual donors demonstrated highly reproducible effects on drug exposure. With respect to drug discovery efforts, integration of the cell models described here are valuable for evaluation of nephrotoxic potentials during lead selection and optimization processes.
ZK-807834 (also known as CI-1031) is a small molecule that potently and selectively inhibits Factor Xa. Studies in animals have shown that ZK-807834 attenuates thrombosis and thrombus progression after fibrinolysis and exhibits an increased antithrombotic-to-bleeding risk ratio compared with conventional agents. The present study describes the human in vitro anticoagulant and pharmacodynamic profile ZK-807834. Consistent with its selective inhibition of Factor Xa, ZK-807834 in the range of 0.3-0.5 microM prolonged prothrombin time (PT) and activated partial thromboplastin time (aPPT) twofold without affecting thrombin time (TT). Intersubject variability of in vitro anticoagulant activity was nominal and gender-independent. ZK-807834 inhibited Factor Xa in clot-bound prothrombinase with an average IC50 of 10+/-7 (S.D.) nM. ZK-807834 exhibited no direct effect on ADP- or collagen-induced platelet aggregation. Based on the potency and specificity, ZK-807834 may represent an important advance in the development of selective and safe antithrombotics.
Low density lipoprotein receptor deficient (LDLR-KO) and apolipoprotein E deficient (apo E-KO) mice both develop hyperlipidemia and atherosclerosis by different mechanisms. The aim of the present study was to compare the effects of simvastatin on cholesterol levels, endothelial dysfunction, and aortic lesions in these two models of experimental atherosclerosis. Male LDLR-KO mice fed a high cholesterol (HC; 1%) diet developed atherosclerosis at 8 months of age with hypercholesterolemia. The addition of simvastatin (300 mg/kg daily) to the HC diet for 2 more months lowered total cholesterol levels by approximately 57% and reduced aortic plaque area by approximately 15% compared with the LDLR-KO mice continued on HC diet alone, P<0.05. Simvastatin treatment also improved acetylcholine (ACh)-induced endothelium-dependent vasorelaxation in isolated aortic rings, which was associated with an increase in NOS-3 expression by approximately 88% in the aorta measured by real time polymerase chain reaction (PCR), P<0.05. In contrast, in age-matched male apo E-KO mice fed a normal diet, the same treatment of simvastatin elevated serum total cholesterol by approximately 35%, increased aortic plaque area by approximately 15%, and had no effect on endothelial function. These results suggest that the therapeutic effects of simvastatin may depend on the presence of a functional apolipoprotein E.
To test the hypothesis that cardiac functional reserve is reduced in animals with severe atherosclerosis, Yucatan minipigs were fed a high-cholesterol diet (Chol) for 8 months. Half of them was made diabetic, an additional risk factor for atherosclerosis, with streptozotocin (STZ). Another group of age-matched minipigs were fed a normal diet as controls. At the end of the treatment period, animals were instrumented for the measurement of cardiovascular hemodynamic parameters under isoflurane anesthesia. Cardiac functional reserve was measured by the magnitude of the inotropic response to isoproterenol stress. Hyperlipidemic minipigs developed severe atherosclerotic plaques in the aorta, coronary and iliac artery, accompanied by an increase in the aortic stiffness indexed by increases in pulse wave velocity and augmentation index. These vascular changes were more severe in STZ-induced insulin-dependent diabetes mellitus. The isoproterenol-induced increase in left ventricular contractility (dP/dt) and relaxation (-dP/dt) and, consequently, cardiac output were also significantly reduced in both the Chol groups with or without STZ, compared to control group. Thus, cardiac functional reserve measured by isoproterenol-stimulated responses was reduced in atherosclerotic minipigs, which was further diminished in diabetes.
Inhibition of factor Xa (FXa) may interrupt thrombus progression. This study compared the antithrombotic activity of a novel FXa inhibitor, ZK-807834 [MW, 527 D; Ki (human FXa), 0.11 nM], with recombinant tick anticoagulant peptide [rTAP; MW, 6,685 D; Ki, (human FXa) = 0.28 nM], and DX-9065a [MW 445 D, Ki (human FXa), 40 nM] in rabbits with arterial thrombosis induced by electrical vascular injury. ZK-807834 also was compared with low molecular weight heparin (LMWH; MW, 5,500 D) during venous thrombosis induced by placing a copper wire and threads in the vena cava. Inhibitors were administered as an i.v. bolus and 2-h infusion. Total dosages of ZK-807834, > or =0.7 micromol/kg (n = 18); rTAP, > or =1 micromol/kg (n = 18); or DX-9065a, > or =11 micromol/kg (n = 18) decreased the incidence of arterial thrombotic occlusion compared with control animals (p < 0.05). However, five of six animals given the lowest effective dosage of rTAP and four of six animals given DX-9065a bled from a surgical incision >5 min, but only two of six animals given ZK-807834 bled >5 min. Venous clot weights were reduced compared with controls for dosages of ZK-807834 > or =0.007 micromol/kg (n = 36) or LMWH > or =0.2 micromol/kg (n = 18). Prothrombin time (PT) and activated partial thromboplastin time (aPTT) were unchanged from baseline at the minimally effective dose of ZK-807834, whereas aPTT was increased twofold at the effective dose of LMWH. Thus ZK-807834 may be useful to attenuate thrombosis at lower dosages and with less perturbation of systemic hemostasis compared with available agents.
A series of indole and carbazole based inhibitors of factor Xa (FXa) has been investigated. The most potent compound inhibits FXa with a Ki of 0.2 nM and has 900- and 750-fold selectivity over thrombin and trypsin, respectively.