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Updated: Oct 27, 2025

Establishment and Characterization of Three Afatinib-resistant Lung Adenocarcinoma PC-9 Cell Lines Developed with Increasing Doses of Afatinib
Published on: June 26, 2019
High-Trough Plasma Concentration of Afatinib Is Associated with Dose Reduction
Takayuki Takahashi1, Hideyuki Terazono1, Takayuki Suetsugu2
1Department of Clinical Pharmacy and Pharmacology, Graduate School of Medical and Dental Sciences, Kagoshima University, Kagoshima 890-8520, Japan.
Abstract:
Afatinib is used to treat non-small-cell lung cancer (NSCLC) harboring epidermal growth factor receptor (EGFR) mutation as a second-generation EGFR-tyrosine kinase inhibitor (TKI). Early prediction of adverse effects based on the pharmacokinetics of afatinib enables support for quality of life (QOL) in patients with no change in efficacy. We examined the pharmacokinetic relationship between trough plasma concentration and adverse effects and evaluated the utility of measuring the trough plasma concentration of afatinib as the first EGFR-TKI treatment for NSCLC in a prospective multicenter study. Twenty-four patients treated with afatinib were enrolled in this study. All blood samples were collected at the trough point, and plasma concentrations were measured using high-performance liquid chromatography-tandem mass spectrometry. Logistic regression analysis for the dose reduction of afatinib was performed, and the receiver operating characteristic (ROC) curve was plotted. Although all patients started afatinib at 40 mg/day, plasma concentrations were variable, and mean and median trough plasma concentrations were 32.9 ng/mL and 32.5 ng/mL in this study, respectively. Minimum and maximum trough plasma concentrations were 10.4 ng/mL and 72.7 ng/mL, respectively. This variability was speculated to involve personal parameters such as laboratory data. However, no patient characteristics or laboratory data examined correlated with the trough plasma concentration of afatinib, except albumin. Albumin showed a weak correlation with plasma concentration (r = 0.60, p = 0.009). The trough plasma concentration of afatinib was significantly associated with the dose reduction of afatinib (p = 0.047). The area under the ROC curve (AUC) for the trough plasma concentration of afatinib was 0.81. The cut-off value was 21.4 ng/mL. The sensitivity and specificity of the cut-off as a risk factor were 0.80 and 0.75. In summary, the trough plasma concentration of afatinib was associated with continued or reduced dosage because of the onset of several adverse effects, and a threshold was seen. Adverse effects not only lower QOL but also hinder continued treatment. Measuring plasma concentrations of afatinib appears valuable to predict adverse effects and continue effective therapy.
Insights
Measuring afatinib trough plasma concentration can predict adverse effects in non-small-cell lung cancer (NSCLC) patients. This monitoring helps maintain treatment efficacy and improve quality of life by anticipating dose adjustments.
Area of Science:
- Pharmacology and Oncology
- Clinical Pharmacokinetics
- Cancer Therapeutics
Background:
- Afatinib is a second-generation EGFR-tyrosine kinase inhibitor (TKI) for EGFR-mutated non-small-cell lung cancer (NSCLC).
- Predicting adverse effects early through pharmacokinetics can improve patient quality of life (QOL) without compromising efficacy.
- The relationship between afatinib trough plasma concentration and adverse events requires further investigation for clinical utility.
Purpose of the Study:
- To examine the pharmacokinetic relationship between afatinib trough plasma concentration and adverse effects in NSCLC patients.
- To evaluate the utility of measuring afatinib trough plasma concentration for predicting adverse events during initial EGFR-TKI therapy.
- To identify a potential threshold for afatinib concentration associated with dose reduction due to adverse effects.
Main Methods:
- Prospective multicenter study involving 24 NSCLC patients treated with afatinib.
- Measurement of plasma afatinib concentrations at trough points using high-performance liquid chromatography-tandem mass spectrometry.
- Logistic regression and receiver operating characteristic (ROC) curve analysis to assess the association between concentration, adverse effects, and dose reduction.
Main Results:
- Significant inter-patient variability in afatinib trough plasma concentrations (mean 32.9 ng/mL, range 10.4-72.7 ng/mL) was observed.
- Albumin showed a weak correlation with plasma concentration (r = 0.60, p = 0.009); no other patient characteristics correlated.
- Trough plasma concentration was significantly associated with afatinib dose reduction (p = 0.047), with an ROC AUC of 0.81 and a cut-off value of 21.4 ng/mL (sensitivity 0.80, specificity 0.75).
Conclusions:
- Afatinib trough plasma concentration is linked to dose adjustments necessitated by adverse effects, indicating a critical threshold.
- Monitoring afatinib plasma levels can help predict adverse events, enabling timely interventions to maintain treatment continuity and efficacy.
- Measuring trough plasma concentrations of afatinib is valuable for optimizing therapy, improving patient QOL, and ensuring sustained treatment in NSCLC.
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