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Integrated modeling methodology for microtubule dynamics and Taxol kinetics with experimentally identifiable parameters.

机译:具有实验可识别参数的微管动力学和紫杉醇动力学的集成建模方法。

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摘要

Microtubule dynamics play a critical role in cell function and stress response, modulating mitosis, morphology, signaling, and transport. Drugs such as paclitaxel (Taxol) can impact tubulin polymerization and affect microtubule dynamics. While theoretical methods have been previously proposed to simulate microtubule dynamics, we develop a methodology here that can be used to compare model predictions with experimental data. Our model is a hybrid of (1) a simple two-state stochastic formulation of tubulin polymerization kinetics and (2) an equilibrium approximation for the chemical kinetics of Taxol drug binding to microtubule ends. Model parameters are biologically realistic, with values taken directly from experimental measurements. Model validation is conducted against published experimental data comparing optical measurements of microtubule dynamics in cultured cells under normal and Taxol-treated conditions. To compare model predictions with experimental data requires applying a "windowing" strategy on the spatiotemporal resolution of the simulation. From a biological perspective, this is consistent with interpreting the microtubule "pause" phenomenon as at least partially an artifact of spatiotemporal resolution limits on experimental measurement.
机译:微管动力学在细胞功能和应激反应,调节有丝分裂,形态,信号传导和转运中起关键作用。紫杉醇(Taxol)等药物会影响微管蛋白聚合并影响微管动力学。虽然以前已经提出了理论方法来模拟微管动力学,但我们在这里开发了一种方法,可用于比较模型预测与实验数据。我们的模型是(1)微管蛋白聚合动力学的简单两态随机公式和(2)紫杉醇药物与微管末端结合的化学动力学的平衡近似的混合体。模型参数在生物学上是现实的,其值直接取自实验测量值。针对公布的实验数据进行模型验证,比较在正常和紫杉醇处理的条件下培养细胞中微管动力学的光学测量。为了将模型预测与实验数据进行比较,需要在模拟的时空分辨率上应用“窗口化”策略。从生物学的角度来看,这与将微管“暂停”现象至少部分解释为实验测量时空分辨率限制的假象是一致的。

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