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Mechanism of inhibition defines CETP activity: a mathematical model for CETP in vitro

机译:抑制机制定义了CETP活性:体外CETP的数学模型

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摘要

Because cholesteryl ester transfer protein (CETP) inhibition is a potential HDL-raising therapy, interest has been raised in the mechanisms and consequences of CETP activity. To explore these mechanisms and the dynamics of CETP in vitro, a mechanistic mathematical model was developed based upon the shuttle mechanism for lipid transfer. Model parameters were estimated from eight published experimental datasets, and the resulting model captures observed dynamics of CETP in vitro. Simulations suggest the shuttle mechanism yields behaviors consistent with experimental observations. Three key findings predicted from model simulations are: 1) net CE transfer activity from HDL to VLDL and LDL can be significantly altered by changing the balance of homoexchange versus heteroexchange of neutral lipids via CETP; 2) lipemia-induced increases in CETP activity are more likely caused by increases in lipoprotein particle size than particle number; and 3) the inhibition mechanisms of the CETP inhibitors torcetrapib and JTT-705 are significantly more potent than a classic competitive inhibition mechanism with the irreversible binding mechanism having the most robust response. In summary, the model provides a plausible representation of CETP activity in vitro, corroborates strong evidence for the shuttle hypothesis, and provides new insights into the consequences of CETP activity and inhibition on lipoproteins.
机译:因为胆固醇酯转移蛋白(CETP)抑制是一种潜在的HDL升高疗法,所以人们对CETP活性的机制和后果产生了兴趣。为了探索这些机制和体外CETP的动力学,基于脂质转移的穿梭机制,建立了一个机械数学模型。从八个已发布的实验数据集中估算了模型参数,所得模型捕获了体外观察到的CETP动态。模拟表明穿梭机制产生与实验观察结果一致的行为。通过模型仿真预测的三个主要发现是:1)通过改变经由CETP的中性脂质的同质交换与异质交换的平衡,可以显着改变从HDL到VLDL和LDL的净CE转移活性; 2)血脂引起的CETP活性增加更可能是由于脂蛋白粒径的增加而不是粒径的增加所致; 3)CETP抑制剂torcetrapib和JTT-705的抑制机制比经典的竞争抑制机制更有效,不可逆结合机制具有最强的响应性。总之,该模型提供了体外CETP活性的合理表示,证实了穿梭假说的有力证据,并提供了关于CETP活性和脂蛋白抑制作用的新见解。

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