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Establishment and Characterization of Three Afatinib-resistant Lung Adenocarcinoma PC-9 Cell Lines Developed with Increasing Doses of Afatinib
Published on: June 26, 2019
Clinical Pharmacokinetics and Pharmacodynamics of Afatinib
Sven Wind1, David Schnell2, Thomas Ebner3
1Translational Medicine and Clinical Pharmacology, Boehringer Ingelheim Pharma GmbH & Co KG, Birkendorfer Strasse 65, 88397, Biberach an der Riss, Germany. sven.wind@boehringer-ingelheim.com.
Abstract:
Afatinib is an oral, irreversible ErbB family blocker that covalently binds to the kinase domains of epidermal growth factor receptor (EGFR), human EGFRs (HER) 2, and HER4, resulting in irreversible inhibition of tyrosine kinase autophosphorylation. Studies in healthy volunteers and patients with advanced solid tumours have shown that once-daily afatinib has time-independent pharmacokinetic characteristics. Maximum plasma concentrations of afatinib are reached approximately 2-5 h after oral administration and thereafter decline, at least bi-exponentially. Food reduces total exposure to afatinib. Over the clinical dose range of 20-50 mg, afatinib exposure increases slightly more than dose proportional. Afatinib metabolism is minimal, with unchanged drug predominantly excreted in the faeces and approximately 5 % in urine. Apart from the parent drug afatinib, the major circulation species in human plasma are the covalently bound adducts to plasma protein. The effective elimination half-life is approximately 37 h, consistent with an accumulation of drug exposure by 2.5- to 3.4-fold based on area under the plasma concentration-time curve (AUC) after multiple dosing. The pharmacokinetic profile of afatinib is consistent across a range of patient populations. Age, ethnicity, smoking status and hepatic function had no influence on afatinib pharmacokinetics, while females and patients with low body weight had increased exposure to afatinib. Renal function is correlated with afatinib exposure, but, as for sex and body weight, the effect size for patients with severe renal impairment (approximately 50 % increase in AUC) is only mildly relative to the extent of unexplained interpatient variability in afatinib exposure. Afatinib has a low potential as a victim or perpetrator of drug-drug interactions, especially with cytochrome P450-modulating agents. However, concomitant treatment with potent inhibitors or inducers of the P-glycoprotein transporter can affect the pharmacokinetics of afatinib. At a dose of 50 mg, afatinib does not have proarrhythmic potential.
Insights
Afatinib, an irreversible ErbB family blocker, exhibits time-independent pharmacokinetics. While generally well-tolerated, factors like female sex, low body weight, and renal impairment can increase exposure to this cancer drug.
Area of Science:
- Pharmacology
- Oncology
- Drug Metabolism and Pharmacokinetics
Background:
- Afatinib is an irreversible ErbB family blocker targeting EGFR, HER2, and HER4.
- It is used in treating advanced solid tumors.
Purpose of the Study:
- To characterize the pharmacokinetic profile of afatinib.
- To identify factors influencing afatinib exposure and potential drug interactions.
Main Methods:
- Pharmacokinetic studies in healthy volunteers and patients with advanced solid tumors.
- Analysis of factors including food intake, dose, metabolism, excretion, patient demographics, and concomitant medications.
Main Results:
- Afatinib has time-independent pharmacokinetics with peak concentrations at 2-5 hours.
- Food reduces exposure; metabolism is minimal, with excretion mainly in feces.
- Elimination half-life is ~37 hours, leading to 2.5-3.4 fold accumulation.
- Females, low body weight, and severe renal impairment increase afatinib exposure.
- Low potential for CYP450 interactions, but P-glycoprotein modulators can affect pharmacokinetics.
Conclusions:
- Afatinib demonstrates predictable pharmacokinetics with some interpatient variability.
- Understanding these factors is crucial for optimizing afatinib dosing and managing potential drug interactions in cancer patients.
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