Machine Learning Prediction of Iron Deficiency Anemia in Chinese Premenopausal Women 12 Months after Sleeve Gastrectomy

Author:

Pan Yunhui1,Du Ronghui1,Han Xiaodong2,Zhu Wei1,Peng Danfeng1,Tu Yinfang13,Han Junfeng4,Bao Yuqian1,Yu Haoyong1

Affiliation:

1. Department of Endocrinology and Metabolism, Shanghai Sixth People’s Hospital Affiliated to Shanghai Jiao Tong University School of Medicine, Shanghai Diabetes Institute, Shanghai Clinical Center of Diabetes, Shanghai Key Laboratory of Diabetes Mellitus, Shanghai Key Clinical Center for Metabolic Disease, Shanghai 200233, China

2. Department of General Surgery, Shanghai Sixth People’s Hospital Affiliated to Shanghai Jiao Tong University School of Medicine, Shanghai 200233, China

3. Department of Endocrinology and Metabolism, Haikou Orthopedic and Diabetes Hospital of Shanghai Sixth People’s Hospital, Haikou 570300, China

4. Department of Endocrinology and Metabolism, Tongji Hospital, School of Medicine, Tongji University, Shanghai 200065, China

Abstract

Premenopausal women, who account for more than half of patients for bariatric surgery, are at higher risk of developing postoperative iron deficiency anemia (IDA) than postmenopausal women and men. We aimed at establishing a machine learning model to evaluate the risk of newly onset IDA in premenopausal women 12 months after sleeve gastrectomy (SG). Premenopausal women with complete clinical records and undergoing SG were enrolled in this retrospective study. Newly onset IDA after surgery, the main outcome, was defined according to the age- and gender-specific World Health Organization criteria. A linear support vector machine model was developed to predict the risk of IDA after SG with the top five important features identified during feature selection. Four hundred and seven subjects aged 31.0 (Interquartile range (IQR): 26.0–36.0) years with a median follow-up period of 12 (IQR 7–13) months were analyzed. They were divided into a training set and a validation set with 285 and 122 individuals, respectively. Preoperative ferritin, age, hemoglobin, creatinine, and fasting C-peptide were included. The model showed moderate discrimination in both sets (area under curve 0.858 and 0.799, respectively, p < 0.001). The calibration curve indicated acceptable consistency between observed and predicted results in both sets. Moreover, decision curve analysis showed substantial clinical benefits of the model in both sets. Our machine learning model could accurately predict newly onset IDA in Chinese premenopausal women with obesity 12 months after SG. External validation was required before the model was used in clinical practice.

Funder

Clinical Research Plan of SHDC

National Key Research and Development Project of China

Hainan Province Health Industry Scientific Research Project

Hainan Provincial Natural Science Foundation of China

National Natural Sciences Foundation of China

Shanghai Municipal Education Commission-Gaofeng Clinical Medicine Grant Support

Shanghai “Science and technology innovation action plan” science and technology support project in biomedical field

Shanghai Research Center for Endocrine and Metabolic Diseases

Publisher

MDPI AG

Subject

Food Science,Nutrition and Dietetics

Cited by 2 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Diagnosing iron deficiency: Controversies and novel metrics;Best Practice & Research Clinical Anaesthesiology;2023-11

2. Analysis of the Machine Learning Methods Effectiveness for Morphological Classification of Anemia;2023 7th International Symposium on Multidisciplinary Studies and Innovative Technologies (ISMSIT);2023-10-26

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