Keywords

Bone cancer

Breast Cancer

General Oncology

Gynecological Cancers

Head and neck cancer

Lung Cancer

Radiation Oncology

World Journal of Medical Oncology, 2025, Volume 9, Issue 1, Pages: 1-7

Development And Validation Of A Simple-To-Use Nomogram To Predict 3-Year Recurrence Rate Of Ovarian Cancer.

Correspondence to Author: Fanyuan Li1, Liping Lai1,Hong Wang2, Shanrong Shu1*

1. Department of Gynecology and Obstetrics, The First Affiliated Hospital of Jinan University, 510630, Guangzhou, People’s Republic of China.
2. Department of Gynecology and Obstetrics, Guangzhou Nansha District maternal and child health hospital, 511466, Guangzhou, People’s Republic of China.

DOI: 10.52338/wjoncgy.2025.4538

Abstract:

Objective: To establish a reliable nomogram model to predict the recurrence rate of ovarian cancer after surgery
Methods: We retrospectively reviewed 216 patients diagnosed with ovarian cancer in our hospital, of which 164 cases were considered valid. Chi-square test and binary logistic regression model were used to analyze the possible predictors. After that, a nomogram model based on those significantly related predictors was established. We used the bootstrap to internally validate the predictive ability of the nomogram model and used the decision curve analysis (DCA) to compare the performance of the FIGO stage with this model.
Results: The nomogram included four significant recurrence predictors: FIGO stage (advanced ovarian cancer), omentum involvement, lymphovascular space invasion (LVSI), CA125. The accuracy of predicting the recurrence was 81.7%. The Maximum Deviation (Emax) and the Average Deviation (Eavg) of bootstrap were 0.035 and 0.007, and the area under the curve (AUC) was 0.863, which demonstrated this model had a good predictive ability. Compared with the FIGO stage, this hybrid model is more superior in predicting recurrence risk in ovarian cancer patients.
Conclusion: We developed and validated a non-invasion and user-friendly nomogram model to predict the recurrence risk of patients with ovarian cancer after surgery.

Keywords:Nomogram; recurrence; ovarian cancer

Citation:

Dr.Shanrong Shu, Development And Validation Of A Simple-To-Use Nomogram To Predict 3-Year Recurrence Rate Of Ovarian Cancer. World Journal of Medical Oncology 2025.

Journal Info

  • Journal Name: World Journal of Medical Oncology
  • Impact Factor: 2.709**
  • ISSN: 2766-6077
  • DOI: 10.52338/wjoncgy
  • Short Name: WJMOY
  • Acceptance rate: 55%
  • Volume: 6 (2024)
  • Submission to acceptance: 25 days
  • Acceptance to publication: 10 days

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  • Publons indexed journal impact factor of 3.90**
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  • Eurasian Scientific Journal Index (ESJI) index journal impact factor of 2.980**
  • Semantic Scholar indexed journal impact factor of 2.980**
  • Cosmos indexed journal impact factor of 3.981**

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