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首页> 外文期刊>Journal of Immunological Methods >Evaluation of logistic and polynomial models for fitting sandwich-ELISA calibration curves.
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Evaluation of logistic and polynomial models for fitting sandwich-ELISA calibration curves.

机译:评估逻辑模型和多项式模型以拟合三明治ELISA校准曲线。

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摘要

Appropriately modeled calibration curves are important for accurately estimating the concentrations of proteins in samples evaluated in sandwich-format enzyme-linked immunosorbent assay (ELISA). Calibration curves are commonly fit using polynomial or logistic models. We compared the fit of a quadratic, cubic and 4-parameter logistic model for highly-replicated calibration curves across seven assays used for quantifying transgenic proteins in commercial crops. Results indicate that it is typically undesirable to include zero-concentration data when modeling these curves over the quantitative range, and simple polynomial models are typically preferable to the commonly recommended 4-parameter logistic model. These results are applicable to assays where precision constraints preclude interpolating results from the flat portions of the calibration curve, and it is under these conditions that the moderate improvements in accuracy described here will have impact.
机译:正确建模的校准曲线对于准确估算通过夹心格式酶联免疫吸附测定(ELISA)评估的样品中蛋白质的浓度非常重要。通常使用多项式或逻辑模型拟合校准曲线。我们比较了二次,三次和4参数逻辑模型的拟合度,该模型适用于七种用于量化商业作物中转基因蛋白质的测定法的高度重复的校准曲线。结果表明,在定量范围内对这些曲线建模时,通常不希望包含零浓度数据,并且简单的多项式模型通常比通常推荐的4参数逻辑模型更可取。这些结果适用于精度约束无法从校准曲线的平坦部分插入结果的分析,并且在这些条件下,此处所述的准确性的适度提高会产生影响。

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