Development of machine learning models for detection of vision threatening Behcet's disease (BD) using Egyptian College of Rheumatology (ECR)-BD cohort

被引:4
|
作者
Hammam, Nevin [1 ]
Bakhiet, Ali [2 ]
El-Latif, Eiman Abd [3 ]
El-Gazzar, Iman I. [4 ]
Samy, Nermeen [5 ]
Noor, Rasha A. Abdel [6 ]
El-Shebeiny, Emad [7 ]
El-Najjar, Amany R. [8 ]
Eesa, Nahla N. [4 ]
Salem, Mohamed N. [9 ]
Ibrahim, Soha E. [10 ]
El-Essawi, Dina F. [11 ]
Elsaman, Ahmed M. [12 ]
Fathi, Hanan M. [13 ]
Sallam, Rehab A. [14 ]
El Shereef, Rawhya R. [15 ]
Ismail, Faten [15 ]
Abd-Elazeem, Mervat I. [16 ]
Said, Emtethal A. [17 ]
Khalil, Noha M. [18 ]
Shahin, Dina [19 ]
El-Saadany, Hanan M. [20 ]
ElKhalifa, Marwa [21 ]
Nasef, Samah I. [22 ]
Abdalla, Ahmed M. [23 ]
Noshy, Nermeen [17 ]
Fawzy, Rasha M. [17 ]
Saad, Ehab [24 ]
Moshrif, Abdelhafeez [25 ]
El-Shanawany, Amira T. [26 ]
Abdel-Fattah, Yousra H. [27 ]
Khalil, Hossam M. [28 ]
Hammam, Osman [29 ]
Fathy, Aly Ahmed [30 ]
Gheita, Tamer A. [31 ]
机构
[1] Assiut Univ, Fac Med, Dept Rheumatol & Rehabil, Assiut, Egypt
[2] Higher Inst Comp Sci & Informat Syst, Comp Sci Dept, Culture & Sci City, Giza, Egypt
[3] Alexandria Univ, Fac Med, Ophthalmol Dept, Alexandria, Egypt
[4] Cairo Univ, Fac Med, Rheumatol Dept, Cairo, Egypt
[5] Ain Shams Univ, Fac Med, Internal Med Dept, Rheumatol Unit, Cairo, Egypt
[6] Tanta Univ, Internal Med Dept, Rheumatol Unit, Gharbia, Egypt
[7] Menoufia Univ, Internal Med Dept, Rheumatol Unit, Menoufia, Egypt
[8] Zagazig Univ, Fac Med, Rheumatol Dept, Sharkia, Egypt
[9] Beni Suef Univ, Fac Med, Internal Med Dept, Rheumatol Unit, Bani Suwayf, Egypt
[10] Ain Shams Univ, Fac Med, Rheumatol Dept, Cairo, Egypt
[11] Natl Ctr Radiat Res & Technol, Internal Med Dept, Rheumatol & Rehabil Clin, Egyptian Atom Energy Author AEA, Cairo, Egypt
[12] Sohag Univ, Fac Med, Rheumatol Dept, Sohag, Egypt
[13] Fayoum Univ, Fac Med, Rheumatol Dept, Al Fayyum, Egypt
[14] Mansoura Univ, Fac Med, Rheumatol Dept, Dakahlia, Egypt
[15] Minia Univ, Fac Med, Rheumatol Dept, Al Minya, Egypt
[16] Beni Suef Univ, Fac Med, Rheumatol Dept, Bani Suwayf, Egypt
[17] Benha Univ, Fac Med, Rheumatol Dept, Kalubia, Egypt
[18] Cairo Univ, Fac Med, Internal Med Dept, Rheumatol Unit, Cairo, Egypt
[19] Mansoura Univ, Fac Med, Internal Med Dept, Rheumatol Unit, Dakahlia, Egypt
[20] Tanta Univ, Fac Med, Rheumatol Dept, Tanta, Egypt
[21] Alexandria Univ, Fac Med, Internal Med Dept, Rheumatol Unit, Alexandria, Egypt
[22] Suez Canal Univ, Fac Med, Rheumatol & Rehabil Dept, Ismailia, Egypt
[23] Aswan Univ, Fac Med, Rheumatol Dept, Aswan, Egypt
[24] South Valley Univ, Fac Med, Rheumatol Dept, Qena, Egypt
[25] Al Azhar Univ, Fac Med, Rheumatol Dept, Assiut, Egypt
[26] Menoufia Univ, Fac Med, Rheumatol Dept, Menoufia, Egypt
[27] Alexandria Univ, Fac Med, Rheumatol Dept, Alexandria, Egypt
[28] Beni Suef Univ, Fac Med, Ophthalmol Dept, Bani Suwayf, Egypt
[29] New Valley Univ, Fac Med, Dept Rheumatol & Rehabil, New Valley, Egypt
[30] Al Azhar Assiut Univ, Fac Med, Ophthalmol Dept, Assiut, Egypt
[31] Cairo Univ, Kasr Al Ainy Sch Med, Rheumatol Dept, Cairo, Egypt
关键词
Behcet's disease; Vision-threatening BD; Machine learning; SHAP analysis; CLINICAL-FEATURES;
D O I
10.1186/s12911-023-02130-6
中图分类号
R-058 [];
学科分类号
摘要
BackgroundEye lesions, occur in nearly half of patients with Behcet's Disease (BD), can lead to irreversible damage and vision loss; however, limited studies are available on identifying risk factors for the development of vision-threatening BD (VTBD). Using an Egyptian college of rheumatology (ECR)-BD, a national cohort of BD patients, we examined the performance of machine-learning (ML) models in predicting VTBD compared to logistic regression (LR) analysis. We identified the risk factors for the development of VTBD.MethodsPatients with complete ocular data were included. VTBD was determined by the presence of any retinal disease, optic nerve involvement, or occurrence of blindness. Various ML-models were developed and examined for VTBD prediction. The Shapley additive explanation value was used for the interpretability of the predictors.ResultsA total of 1094 BD patients [71.5% were men, mean +/- SD age 36.1 +/- 10 years] were included. 549 (50.2%) individuals had VTBD. Extreme Gradient Boosting was the best-performing ML model (AUROC 0.85, 95% CI 0.81, 0.90) compared with logistic regression (AUROC 0.64, 95%CI 0.58, 0.71). Higher disease activity, thrombocytosis, ever smoking, and daily steroid dose were the top factors associated with VTBD.ConclusionsUsing information obtained in the clinical settings, the Extreme Gradient Boosting identified patients at higher risk of VTBD better than the conventional statistical method. Further longitudinal studies to evaluate the clinical utility of the proposed prediction model are needed.
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页数:13
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