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Heart rate correction models to detect QT interval prolongation in novel pharmaceutical development.

机译:用于检测新型药物开发中QT间隔延长的心率校正模型。

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INTRODUCTION: The QT interval of the electrocardiogram (ECG) reflects the duration of ventricular depolarization and repolarization. A drug-induced prolongation of ventricular repolarization, and thereby QT prolongation, is recognized to be a marker for an enhanced risk for ventricular arrhythmia. The assessment of a drug's effect on the QT interval has therefore become routine within pharmaceutical research and development. However, the heart rate has a major influence on the QT interval; the QT interval shortens as heart rate increases such that one needs to account for such heart rate-dependent changes when evaluating possible drug-induced effects on the QT interval. The relationship between the QT interval and heart rate can be modeled mathematically and using this function a so-called "corrected" QT interval (QTc) can be generated to assess drug-induced effects independent from heart rate-dependent effects. In the past few years, a large number of mathematical relationship have been described that supposedly best describe the heart rate-QT relationship. In this paper we describe a novel approach for selecting the optimal mathematical function for this purpose for a given individual. METHODS: Mongrel, purpose-bred dogs (16, males and females) were instrumented with radiotelemetry transmitters (ITS) for measurement of aortic pressure (AP), left ventricular pressure (LVP), the lead II ECG and body temperature. ECGs were recorded continuously without drug treatment and include a range of HRs due to spontaneous, physiological changes over the 24h of data acquisition. Various mathematical models (>20) were then used to evaluate the HR-QT relationship and these were compared statistically to objectively select the model best fitting the data set of each individual animal. RESULTS: In this study a dynamic analysis algorithm was developed to find the optimal descriptor of the HR-QT relationship for a given individual animal under control conditions. The use of this optimal relationship provides the best possible approach for detecting drug-induced effects on the QT interval for compounds that also affect the heart rate. DISCUSSION: Several numerical methods to optimize the correction functions and statistical procedures to perform significance tests were discussed and implemented in a QT/RR relationship analysis system, named QTana. Given a sample data set, QTana searches the best correction model(s) from the integrated 11 QT/RR relationship modeling functions.
机译:简介:心电图(ECG)的QT间隔反映了心室去极化和复极化的持续时间。药物引起的心室复极的延长,进而QT延长,被认为是增加的室性心律失常风险的标志。因此,对药物对QT间隔的影响的评估已成为药物研究和开发中的常规方法。但是,心率对QT间隔有重要影响。 QT间隔随心率增加而缩短,因此在评估药物对QT间隔的影响时,需要考虑这种心率依赖性变化。 QT间隔和心率之间的关系可以用数学方法建模,并且使用此功能,可以生成所谓的“校正” QT间隔(QTc),以独立于心率依赖性效应来评估药物诱导的效应。在过去的几年中,已经描述了许多数学关系,这些数学关系最好地描述了心率与QT的关系。在本文中,我们描述了一种针对给定个体为此目的选择最佳数学函数的新颖方法。方法:将杂种狗(16只,雄性和雌性)用无线电遥测发射机(ITS)进行仪器测量,以测量主动脉压(AP),左心室压(LVP),II导联心电图和体温。在没有药物治疗的情况下连续记录心电图,并且由于在数据采集的24小时内发生自发的生理变化,因此包括一系列HR。然后使用各种数学模型(> 20)评估HR-QT关系,并进行统计学比较以客观地选择最适合每只动物数据集的模型。结果:在这项研究中,开发了一种动态分析算法,以找到在控制条件下给定个体动物的HR-QT关系的最佳描述子。这种最佳关系的使用为检测也会对心率产生影响的化合物对QT间隔的药物诱导效应提供了最佳方法。讨论:在QT / RR关系分析系统QTana中讨论并实现了几种优化校正函数的数值方法和执行显着性检验的统计程序。给定一个样本数据集,QTana从集成的11个QT / RR关系建模函数中搜索最佳校正模型。

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