| Literature DB >> 26068927 |
Jeanne Mendell1, Shuquan Chen, Ling He, Madhuri Desai, Dolly A Parasramupria.
Abstract
BACKGROUND ANDEntities:
Mesh:
Substances:
Year: 2015 PMID: 26068927 PMCID: PMC4488474 DOI: 10.1007/s40261-015-0298-2
Source DB: PubMed Journal: Clin Drug Investig ISSN: 1173-2563 Impact factor: 2.859
Demographic and baseline characteristics (enrolled population, N = 34)
| Characteristic | Value |
|---|---|
| Male, | 27 (79.4) |
| Race, | |
| Black | 24 (70.6) |
| White | 7 (20.6) |
| Asian | 2 (5.9) |
| Other | 1 (2.9) |
| Ethnicity, | |
| Hispanic/Latino | 3 (8.8) |
| Not Hispanic/Latino | 31 (91.2) |
| Age, years | 30.9 ± 6.4a |
| Body mass index, kg/m2 | 26.1 ± 2.7a |
aMean ± standard deviation
Fig. 1Mean plasma concentration–time curves of edoxaban (a) and the edoxaban metabolites M4 (b) and M6 (c) with and without rifampin. Edoxaban = a single oral dose of edoxaban 60 mg. Edoxaban with rifampin = 7 days of rifampin 600 mg (2 × 300 mg capsules once daily) followed by a single oral dose of edoxaban 60 mg administered concomitantly on day 7. Error bars represent standard deviations. The insets show semi-log scale plots
Pharmacokinetic parameters of edoxaban and its metabolites
| Parameter | Edoxaban | M4 | M6 | |||
|---|---|---|---|---|---|---|
| Edoxaban alone, | Edoxaban with rifampin, | Edoxaban alone, | Edoxaban with rifampin, | Edoxaban alone, | Edoxaban with rifampin, | |
|
| 243 ± 100 | 257 ± 61.8 | 23.1 ± 13.2 | 108 ± 33.0 | 8.55 ± 4.10 | 44.5 ± 12.3 |
|
| 1.08 (0.50–4.00) | 1.00 (0.50–3.00) | 1.81 (1.00–3.05) | 2.00 (1.00–3.00) | 1.49 (0.983–3.00) | 1.00 (0.617–3.00) |
| AUC∞, ng·h/mL | 1835 ± 442 | 1192 ± 214 | 161 ± 69.8 | 449 ± 140 | 91.1 ± 28.2 | 261 ± 57.4 |
|
| 13.6 ± 6.06 | 6.54 ± 4.24 | 14.3 ± 6.0 | 4.23 ± 3.78 | 14.3 ± 5.58 | 10.0 ± 3.81 |
| CL/F, L/h | 34.8 ± 9.22 | 52.0 ± 9.76 | NC | NC | NC | NC |
| Metabolite to parent exposure ratio (%) | 8.89 ± 3.22 | 38.1 ± 11.8 | 5.09 ± 1.44 | 22.2 ± 4.35 | ||
Data are presented as arithmetic mean ± standard deviation, except for t max values, which are presented as median (range)
AUC area under the plasma concentration–time curve from time zero extrapolated to infinity, CL/F apparent total body clearance, C maximum plasma concentration, NC not calculated, t apparent terminal half-life, t time to C max
Geometric least squares mean ratios for pharmacokinetic parameters
| Parameter | Ratio of edoxaban alone to edoxaban with rifampin (90 % confidence interval) | ||
|---|---|---|---|
| Edoxaban | M4 | M6 | |
|
| 110.1 (98.8 to 122.6) | 506.4 (446.5 to 574.4) | 551.9 (485.6 to 627.2) |
| AUC∞ | 65.72 (62.5 to 69.1) | 285.5 (264.5 to 308.1) | 291.1 (274.0 to 309.4) |
AUC area under the plasma concentration–time curve from time zero extrapolated to infinity, C maximum plasma concentration, t time to C max
Fig. 2Pharmacodynamic effects of edoxaban with and without rifampin on (a) the mean prothrombin time and (b) the mean activated partial thromboplastin time. Edoxaban = a single oral dose of edoxaban 60 mg. Edoxaban with rifampin = 7 days of rifampin 600 mg (2 × 300 mg capsules once daily) followed by a single oral dose of edoxaban 60 mg administered concomitantly on day 7. The error bars represent standard deviations
| Rifampin induces cytochrome P450 (CYP) 3A4/5 and P-glycoprotein. It also inhibits organic anion–transporting polypeptide (OATP) 1B1. Edoxaban is metabolized (< 10 %) by CYP3A4/5 and is a substrate for P-glycoprotein. Edoxaban’s metabolite, M4, is a substrate for OAT1B1. |
| Coadministration of edoxaban with rifampin reduces total exposure to edoxaban and simultaneously increases exposure to its active metabolites formed via CYP3A4/5. |
| Rifampin also increases exposure to the M4 metabolite, which is not formed through the CYP3A4/5 pathway. |
| Edoxaban was well tolerated in healthy adults. |