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Development of a bivariate mathematical model to characterize simultaneously the dose-time-responses of pro-oxidant agents

机译:生物分化数学模型的发展同时表征促氧化剂的剂量 - 时间响应

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The available data about the interference of oxidation compounds in the oxidation kinetics of process such as lipid oxidation chain reactions, the resistance of pharmaceutical drugs, the effects of free radical agents in cell tissue, the damage causedin DNA, etc, are examples of the many applications for in vivo and in vitro assays. However, often in these bio-assays, only semi-quantitative conclusions can be obtained, due to the use of quantification procedures disregarding kinetic considerations.A pseudo-mechanistic model is proposed which is based on the accumulative Weibull's function, and represents a formal transfer from the field of the dose-response relationships. It allows researchers to obtain the simultaneous solution of a series of oxidation activities as a function of concentration and time. It describes satisfactorily simulations in which reaction compounds interact through a second order kinetic scheme. Its application is simple: it provides parametric estimates, which characterizethe oxidative process; facilitates rigorous comparisons between the effects of distinct compounds in different systems; reduces the sensitivity to the experimental error; and its mathematical form constitutes a useful orientation to prepare more economic and efficient trial designs. The model was assayed, firstly, using the kinetic simulation of the oxidative process, and finally, it was applied to a variety of experimental data from other authors in different systems and conditions, obtaining highly satisfactory results in all cases. In all experimental data tested, the calculated parameters were always statistically significant (Student's t-test, or = 0.05), the equations were consistent (Fisher's F-test) and the goodness of fit (adj R~2, adjusted coefficient of multiple determination) were up to 0.98.
机译:关于氧化化合物在氧化动力学中的氧化动力学的干扰的可用数据,如脂氧化链反应,药物抗性,自由基剂在细胞组织中的效果,造成的造成损伤DNA等,是许多例子体内和体外测定的应用。然而,通常在这些生物测定中,由于使用量化程序的使用忽视了动力学考虑,因此仅提出了一种基于累积的Weibull功能的伪机械模型,并且代表正式转移来自剂量响应关系的领域。它允许研究人员获得一系列氧化活性的同时解决浓度和时间的函数。它描述了令人满意的模拟,其中反应化合物通过二阶动力学方案相互作用。它的应用很简单:它提供了参数估计,氧化过程的特征;促进不同系统中不同化合物的效果之间严格的比较;降低对实验误差的敏感性;其数学形式构成了制备更经济和有效的试验设计的有用方向。该模型的测定,首先,使用氧化过程的动力学模拟,最后,将其应用于不同系统和条件中其他作者的各种实验数据,从而获得所有病例的高度令人满意的结果。在所有测试数据中,计算的参数始终统计学意义(学生的T检验,或= 0.05),方程式一致(Fisher的F-Test)以及适合的良好(ACM R〜2,调整后的多重系数)高达0.98。

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