A nomogram model based on MRI and radiomic features developed and validated for the evaluation of lymph node metastasis in patients with rectal cancer.

Purpose: The aim of this study was to develop and validate a nomogram model to evaluate lymph node metastasis (LNM) in patients with rectal cancer (RC). Methods: A total of 162 patients with RC were included in the study. The MRI reported model, the Radscore model, and the Complex model were constru...

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Publicado en:Abdominal Radiology Vol. 47; no. 12; pp. 4103 - 4115
Autores principales: Su, Yexin, Zhao, Hongyue, Liu, Pengfei, Zhang, Linhan, Jiao, Yuying, Xu, Peng, Lyu, Zhehao, Fu, Peng
Formato: Journal Article
Publicado: Springer Nature Dec2022
Acceso en línea:Ver este registro en EBSCOhost
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      pub: Springer Nature
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        10.1007/s00261-022-03672-5
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        atl: A nomogram model based on MRI and radiomic features developed and validated for the evaluation of lymph node metastasis in patients with rectal cancer.
      aug:
        au:
          Su, Yexin
          Zhao, Hongyue
          Liu, Pengfei
          Zhang, Linhan
          Jiao, Yuying
          Xu, Peng
          Lyu, Zhehao
          Fu, Peng
        affil: Department of Magnetic Resonance, The First Affiliated Hospital of Harbin Medical University, Harbin, Heilongjiang, China
      sug:
      ab: Purpose: The aim of this study was to develop and validate a nomogram model to evaluate lymph node metastasis (LNM) in patients with rectal cancer (RC). Methods: A total of 162 patients with RC were included in the study. The MRI reported model, the Radscore model, and the Complex model were constructed using the logistics regression (LR) algorithm. The DeLong test and decision curve analysis (DCA) were used to compare the prediction performance and clinical utility of these models. The nomogram model was constructed to visualize the prediction results of the best model. Model performance was evaluated in the training and validation groups, and the calibration curve and Hosmer–Lemeshow goodness of fit test were used to evaluate the calibration. Result: All three models constructed by the LR algorithm were good at identifying LNM. The DeLong test and the DCA results showed that the Complex model outperformed the MRI reported model and the Radscore model in relation to their predictive performance and clinical utility. The nomogram of the Complex model had an area under the curve (AUC) of 0.902 (95% confidence interval (CI) 0.848–0.957) in the training group and an AUC of 0.891 (95% CI 0.799–0.983) in the validation group. Meanwhile, the nomogram showed good calibration. Conclusion: The nomogram model constructed based on T2WI radiomics and MRI reported had good diagnostic efficacies for LNM in patients with RC, and provided a new auxiliary method for accurate and individualized clinical management.
      pubtype: Academic Journal
      doctype: Journal Article
      ougenre: Article
    language: English
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