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

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 premenopa...

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Autores principales: Pan, Yunhui, Du, Ronghui, Han, Xiaodong, Zhu, Wei, Peng, Danfeng, Tu, Yinfang, Han, Junfeng, Bao, Yuqian, Yu, Haoyong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10421369/
https://www.ncbi.nlm.nih.gov/pubmed/37571322
http://dx.doi.org/10.3390/nu15153385
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author Pan, Yunhui
Du, Ronghui
Han, Xiaodong
Zhu, Wei
Peng, Danfeng
Tu, Yinfang
Han, Junfeng
Bao, Yuqian
Yu, Haoyong
author_facet Pan, Yunhui
Du, Ronghui
Han, Xiaodong
Zhu, Wei
Peng, Danfeng
Tu, Yinfang
Han, Junfeng
Bao, Yuqian
Yu, Haoyong
author_sort Pan, Yunhui
collection PubMed
description 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.
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spelling pubmed-104213692023-08-12 Machine Learning Prediction of Iron Deficiency Anemia in Chinese Premenopausal Women 12 Months after Sleeve Gastrectomy Pan, Yunhui Du, Ronghui Han, Xiaodong Zhu, Wei Peng, Danfeng Tu, Yinfang Han, Junfeng Bao, Yuqian Yu, Haoyong Nutrients Article 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. MDPI 2023-07-30 /pmc/articles/PMC10421369/ /pubmed/37571322 http://dx.doi.org/10.3390/nu15153385 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Pan, Yunhui
Du, Ronghui
Han, Xiaodong
Zhu, Wei
Peng, Danfeng
Tu, Yinfang
Han, Junfeng
Bao, Yuqian
Yu, Haoyong
Machine Learning Prediction of Iron Deficiency Anemia in Chinese Premenopausal Women 12 Months after Sleeve Gastrectomy
title Machine Learning Prediction of Iron Deficiency Anemia in Chinese Premenopausal Women 12 Months after Sleeve Gastrectomy
title_full Machine Learning Prediction of Iron Deficiency Anemia in Chinese Premenopausal Women 12 Months after Sleeve Gastrectomy
title_fullStr Machine Learning Prediction of Iron Deficiency Anemia in Chinese Premenopausal Women 12 Months after Sleeve Gastrectomy
title_full_unstemmed Machine Learning Prediction of Iron Deficiency Anemia in Chinese Premenopausal Women 12 Months after Sleeve Gastrectomy
title_short Machine Learning Prediction of Iron Deficiency Anemia in Chinese Premenopausal Women 12 Months after Sleeve Gastrectomy
title_sort machine learning prediction of iron deficiency anemia in chinese premenopausal women 12 months after sleeve gastrectomy
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10421369/
https://www.ncbi.nlm.nih.gov/pubmed/37571322
http://dx.doi.org/10.3390/nu15153385
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