Pharmacokinetics of Caffeine: A Systematic Analysis of Reported Data for Application in Metabolic Phenotyping and Liver Function Testing.
カフェインの薬物動態:代謝表現型解析と肝機能検査への応用のための報告データの系統的分析 (機械翻訳の邦題)
記録の確認項目
- 研究デザイン
- レビュー
- 対象
- 未確定
- 出版年
- 2021
- 出典
- doi.org
- 抄録の表示
- 表示あり
- 出版状態
- 有効な記録
- 状態確認日
- 2026/08/17
- 収集日
- 2026/08/03
- 鮮度
- 確認期限内
- 確認段階
- 自動処理
- 記録状態
- 公開
日本語要約(機械生成)
カフェインは世界中で最も広く摂取される精神刺激薬であり、主に肝臓のチトクロムP450 1A2(CYP1A2)によって代謝される。本研究は、カフェインの薬物動態に関する141報の文献からデータを統合し、ヒト成人におけるカフェインとその代謝物の薬物動態および代謝比に関する包括的なデータセットを構築した。データセットには、患者コホートの特性、介入内容、薬物動態パラメータなどのメタデータが含まれる。このデータセットを用いて、喫煙や経口避妊薬の使用による薬物動態の変化、薬物間相互作用、疾患の影響、血漿と唾液の比較による唾液検査の適用可能性を分析した。その結果、データセットは既存の知識を強化し、カフェインに基づく代謝表現型解析と肝機能検査の精度向上に寄与する新たな知見をもたらすことが示された。
この要約は公開抄録のみを根拠にAIが機械的に生成したものです。正確な内容は原文を確認してください。
抄録
Caffeine is by far the most ubiquitous psychostimulant worldwide found in tea, coffee, cocoa, energy drinks, and many other beverages and food. Caffeine is almost exclusively metabolized in the liver by the cytochrome P-450 enzyme system to the main product paraxanthine and the additional products theobromine and theophylline. Besides its stimulating properties, two important applications of caffeine are metabolic phenotyping of cytochrome P450 1A2 (CYP1A2) and liver function testing. An open challenge in this context is to identify underlying causes of the large inter-individual variability in caffeine pharmacokinetics. Data is urgently needed to understand and quantify confounding factors such as lifestyle (e.g., smoking), the effects of drug-caffeine interactions (e.g., medication metabolized via CYP1A2), and the effect of disease. Here we report the first integrative and systematic analysis of data on caffeine pharmacokinetics from 141 publications and provide a comprehensive high-quality data set on the pharmacokinetics of caffeine, caffeine metabolites, and their metabolic ratios in human adults. The data set is enriched by meta-data on the characteristics of studied patient cohorts and subjects (e.g., age, body weight, smoking status, health status), the applied interventions (e.g., dosing, substance, route of application), measured pharmacokinetic time-courses, and pharmacokinetic parameters (e.g., clearance, half-life, area under the curve). We demonstrate via multiple applications how the data set can be used to solidify existing knowledge and gain new insights relevant for metabolic phenotyping and liver function testing based on caffeine. Specifically, we analyzed 1) the alteration of caffeine pharmacokinetics with smoking and use of oral contraceptives; 2) drug-drug interactions with caffeine as possible confounding factors of caffeine pharmacokinetics or source of adverse effects; 3) alteration of caffeine pharmacokinetics in disease; and 4) the applicability of caffeine as a salivary test substance by comparison of plasma and saliva data. In conclusion, our data set and analyses provide important resources which could enable more accurate caffeine-based metabolic phenotyping and liver function testing.
DOI 10.3389/fphar.2021.752826
PMID 35280254
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