Linear mixed model for weight analysis in mice infected by Trypanosoma cruzi

Roney Peterson Pereira, T. A. Guedes, É. C. Ferreira, S. M. Araújo, Larissa Aparecida Ricardini, L. Ciupa
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Abstract

The use of linear mixed models for nested structure longitudinal data is called hierarchical linear modeling. This modeling takes into account the dependence of existing data within each level and between hierarchical levels. The process of modeling, estimating and analyzing diagnoses was illustrated through data on the weights of mice experimentally infected by Trypanosoma cruzi, divided into different treatment groups, with the purpose of verifying the evolution of their body weight as a result of using different types of biotherapeutics produced from Gallus gallus domesticus (chicken) serum to treat Trypanosoma cruzi. Through the model selection criteria AIC and BIC and the likelihood ratio test, a model was chosen to describe the data correctly. Model diagnoses were then performed by means of residual analysis for both levels and an analysis of influential observations to verify if any observations were signaled as influencing the fixed effects, the components of variance and the adjusted values. After the analysis, it was possible to notice that the observations that were signaled as influential had little impact on the Model chosen initially, so it was maintained, with no differences being evidenced between the treatments with the biotherapeutics tested; only the Time variable and the Random intercept were necessary to describe the weight of the mice.
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克氏锥虫感染小鼠体重分析的线性混合模型
对嵌套结构纵向数据使用线性混合模型称为层次线性建模。该建模考虑了每个级别内和分层级别之间现有数据的依赖性。通过实验感染克氏锥虫的小鼠体重数据来说明建模、估计和诊断分析的过程,并将其分为不同的治疗组,目的是验证使用不同类型的鸡血清生产的生物治疗药物治疗克氏锥虫对小鼠体重的影响。通过模型选择准则AIC和BIC以及似然比检验,选择了能够正确描述数据的模型。然后通过对两个水平的残差分析和对有影响的观测值的分析来进行模型诊断,以验证是否有任何观测值被标记为影响固定效应、方差成分和调整值。在分析之后,可以注意到,被标记为有影响力的观察结果对最初选择的模型影响很小,因此它被维持,治疗与测试的生物治疗药物之间没有差异被证明;只有时间变量和随机截距是描述小鼠体重的必要条件。
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