Automated calculation and reporting of vancomycin area under the concentration-time curve: a simplified single-trough concentration-based equation approach.

IF 4.1 2区 医学 Q2 MICROBIOLOGY Antimicrobial Agents and Chemotherapy Pub Date : 2024-08-28 DOI:10.1128/aac.00699-24
Hyun-Ki Kim, Tae-Dong Jeong, Misuk Ji, Sollip Kim, Woochang Lee, Sail Chun
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Abstract

Vancomycin, a crucial antibiotic for Gram-positive bacterial infections, requires therapeutic drug monitoring (TDM). Contemporary guidelines advocate for AUC-based monitoring; however, using Bayesian programs for AUC estimation poses challenges. We aimed to develop and evaluate a simplified AUC estimation equation using a steady-state trough concentration (Ctrough) value. Utilizing 1,034 TDM records from 580 general hospitalized patients at a university-affiliated hospital in Ulsan, we created an equation named SSTA that calculates the AUC by applying Ctrough, body weight, and single dose as input variables. External validation included 326 records from 163 patients at a university-affiliated hospital in Seoul (EWUSH) and literature data from 20 patients at a university-affiliated hospital in Bangkok (MUSI). It was compared with other AUC estimation models based on the Ctrough, including a linear regression model (LR), a sophisticated model based on the first-order equation (VancoPK), and a Bayesian model (BSCt). Evaluation metrics, such as median absolute percentage error (MdAPE) and the percentage of observations within ±20% error (P20), were calculated. External validation using the EWUSH data set showed that SSTA, LR, VancoPK, and BSCt had MdAPE values of 6.4, 10.1, 6.6, and 7.5% and P20 values of 87.1, 82.5, 87.7, and 83.4%, respectively. External validation using the MUSI data set showed that SSTA, LR, and VancoPK had MdAPEs of 5.2, 9.4, and 7.2%, and P20 of 95, 90, and 95%, respectively. Owing to its decent AUC prediction performance, simplicity, and convenience for automated calculation and reporting, SSTA could be used as an adjunctive tool for the AUC-based TDM.

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万古霉素浓度-时间曲线下面积的自动计算和报告:基于单槽浓度方程的简化方法。
万古霉素是治疗革兰氏阳性细菌感染的重要抗生素,需要进行治疗药物监测(TDM)。当代指南提倡基于 AUC 的监测;然而,使用贝叶斯程序估算 AUC 带来了挑战。我们旨在开发并评估一种使用稳态谷浓度(Ctrough)值的简化 AUC 估算方程。利用蔚山一所大学附属医院 580 名普通住院患者的 1,034 份 TDM 记录,我们创建了一个名为 SSTA 的方程,该方程通过将 Ctrough、体重和单次剂量作为输入变量来计算 AUC。外部验证包括首尔一所大学附属医院(EWUSH)163 名患者的 326 份记录和曼谷一所大学附属医院(MUSI)20 名患者的文献数据。该模型与其他基于Ctrough的AUC估计模型进行了比较,包括线性回归模型(LR)、基于一阶方程的复杂模型(VancoPK)和贝叶斯模型(BSCt)。计算了中位绝对百分比误差(MdAPE)和误差在±20%以内的观测值百分比(P20)等评价指标。使用 EWUSH 数据集进行的外部验证显示,SSTA、LR、VancoPK 和 BSCt 的 MdAPE 值分别为 6.4、10.1、6.6 和 7.5%,P20 值分别为 87.1、82.5、87.7 和 83.4%。使用 MUSI 数据集进行的外部验证显示,SSTA、LR 和 VancoPK 的 MdAPE 分别为 5.2%、9.4% 和 7.2%,P20 分别为 95%、90% 和 95%。由于 SSTA 的 AUC 预测性能良好、操作简单、便于自动计算和报告,因此可作为基于 AUC 的 TDM 的辅助工具。
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来源期刊
CiteScore
10.00
自引率
8.20%
发文量
762
审稿时长
3 months
期刊介绍: Antimicrobial Agents and Chemotherapy (AAC) features interdisciplinary studies that build our understanding of the underlying mechanisms and therapeutic applications of antimicrobial and antiparasitic agents and chemotherapy.
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