A warning machine Learning algorithm for early knee osteoarthritis structural progressor patient screening

被引:32
作者
Bonakdari, Hossein [1 ]
Jamshidi, Afshin [1 ,2 ]
Pelletier, Jean-Pierre [1 ]
Abram, Francois [3 ]
Tardif, Ginette [1 ]
Martel-Pelletier, Johanne [1 ]
机构
[1] Univ Montreal Hosp Res Ctr CRCHUM, Osteoarthrit Res Unit, 900 St Denis,Suite R11-412, Montreal, PQ H2X 0A9, Canada
[2] Laval Univ Hosp Res Ctr, Quebec City, PQ, Canada
[3] ArthroLab Inc, Med Imaging Res & Dev, Montreal, PQ, Canada
关键词
adipokines; biomarkers; early prediction; knee osteoarthritis; machine learning; structural progressor; INFRAPATELLAR FAT PAD; C-REACTIVE PROTEIN; GENDER-DIFFERENCES; SYNOVIAL-FLUID; CLINICAL SYMPTOMS; ADIPONECTIN RATIO; SEX-DIFFERENCES; LEPTIN; ADIPOKINES; OBESITY;
D O I
10.1177/1759720X21993254
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Aim: In osteoarthritis (OA) there is a need for automated screening systems for early detection of structural progressors. We built a comprehensive machine learning (ML) model that bridges major OA risk factors and serum levels of adipokines/related inflammatory factors at baseline for early prediction of at-risk knee OA patient structural progressors over time. Methods: The patient- and gender-based model development used baseline serum levels of six adipokines, three related inflammatory factors and their ratios (36), as well as major OA risk factors [age and bone mass index (BMI)]. Subjects (677) were selected from the Osteoarthritis Initiative (OAI) progression subcohort. The probability values of being structural progressors (PVBSP) were generated using our previously published prediction model, including five baseline structural features of the knee, i.e. two X-rays and three magnetic resonance imaging variables. To identify the most important variables amongst the 47 studied in relation to PVBSP, we employed the ML feature classification methodology. Among five supervised ML algorithms, the support vector machine (SVM) demonstrated the best accuracy and use for gender-based classifiers development. Performance and sensitivity of the models were assessed. A reproducibility analysis was performed with clinical trial OA patients. Results: Feature selections revealed that the combination of age, BMI, and the ratios CRP/MCP-1 and leptin/CRP are the most important variables in predicting OA structural progressors in both genders. Classification accuracies for both genders in the testing stage (OAI) were >80%, with the highest sensitivity of CRP/MCP-1. Reproducibility analysis showed an accuracy >= 92%; the ratio CRP/MCP-1 demonstrated the highest sensitivity in women and leptin/CRP in men. Conclusion: This is the first time that such a framework was built for predicting knee OA structural progressors. Using this automated ML patient- and gender-based model, early prediction of knee structural OA progression can be performed with high accuracy using only three baseline serum biomarkers and two risk factors.
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页数:16
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