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Πέμπτη 5 Οκτωβρίου 2017

A Real-time Prediction Model for Post-irradiation Malignant Cervical Lymph Nodes

Abstract

Objective

To establish a real-time predictive scoring model based on sonographic characteristics for identifying malignant cervical lymph nodes (LNs) in cancer patients after neck irradiation.

Methods

One-hundred-forty-four irradiation-treated patients underwent ultrasonography and ultrasound-guided fine needle aspirations (USgFNAs), and the resultant data were used to construct a real-time and computerized predictive scoring model. This scoring system was further compared with our previously proposed prediction model.

Results

A predictive scoring model, 1.35 x (L axis) + 2.03 x (S axis) + 2.27 x (Margin) + 1.48 x (Echogenic hilum) + 3.7, was generated by stepwise multivariate logistic regression analysis. Neck LNs were considered to be malignant when the score was ≥ 7, corresponding to a sensitivity of 85.5%, specificity of 79.4%, positive predictive value (PPV) of 82.3%, negative predictive value (NPV) of 83.1%, and overall accuracy of 82.6%. When this new model and the original model were compared, the areas under the receiver operating characteristic curve (c-statistic) were 0.89 and 0.81, respectively (p < 0.05).

Conclusions

A real-time sonographic predictive scoring model was constructed to provide prompt and reliable guidance for USgFNA biopsies to manage cervical LNs after neck irradiation.

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