Establishment of predictive models for acute complicated appendicitis during pregnancy—A retrospective case–control study

Author:

Li Ping1,Zhang Zhuo2,Weng Shanshan3,Nie Hu24

Affiliation:

1. Intensive Care Unit West China Hospital of Sichuan University Chengdu city China

2. Department of Emergency Medicine West China Hospital of Sichuan University Chengdu city China

3. Department of Emergency Medicine Chengdu First People's Hospital Chengdu city China

4. West China Xiamen Hospital of Sichuan University Xiamen China

Abstract

AbstractObjectiveTo develop a scoring system based on clinical and imaging features to distinguish complicated appendicitis (CA) from uncomplicated appendicitis (UCA) during pregnancy.MethodThis was a retrospective case–control study. Patients diagnosed with acute appendicitis during pregnancy were included, and they were divided into a CA group and a UCA group based on the intraoperative findings and the biopsy results. Multivariate logistic regression and machine learning were employed to establish a predictive model.ResultsA total of 342 patients were included in this study. Among them, 141 (41.23%) patients were diagnosed with CA. The predictive model contained six indices, including symptom duration time more than 24 h, fever, heart rate at least 98 beats/minute, monocyte count at least 0.72 × 109/L, lymphocyte count at least 1 × 109/L and direct bilirubin at least 4.75 μmol/L. The total score was 31 points, and a score of more than 15.5 points predicted the development of CA during pregnancy with area under the curve (AUC) of 0.80 (95% confidence interval 0.75–0.84) and specificity of 0.84. A decision flow chart for distinguishing CA from UCA during pregnancy was developed by Decision Tree with an AUC of 0.78.ConclusionThe models combining clinical findings and laboratory tests, developed by two methods, can distinguish CA from UCA in pregnancy in a convenient and visualized way.Trial RegistrationThe research has been registered in Chinese Clinical Trial Registry on January 7, 2022 with registration ID ChiCTR2200055339.

Publisher

Wiley

Subject

Obstetrics and Gynecology,General Medicine

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