Computational flow cytometry as a diagnostic tool in suspected-myelodysplastic syndromes

被引:25
|
作者
Duetz, Carolien [1 ]
Van Gassen, Sofie [2 ,3 ]
Westers, Theresia M. [1 ]
van Spronsen, Margot F. [1 ]
Bachas, Costa [1 ]
Saeys, Yvan [2 ,3 ]
van de Loosdrecht, Arjan A. [1 ]
机构
[1] Vrije Univ Amsterdam, Canc Ctr Amsterdam, Med Ctr, Dept Hematol,Amsterdam UMC, Amsterdam, Netherlands
[2] Ghent Univ VIB, Inflammat Res Ctr, Ghent, Belgium
[3] Univ Ghent, Dept Appl Math Comp Sci & Stat, Ghent, Belgium
基金
欧盟地平线“2020”;
关键词
diagnostic test; flow cytometry; hematological malignancies; machine learning; myelodysplastic syndromes; CLONAL HEMATOPOIESIS; CLASSIFICATION; MODELS;
D O I
10.1002/cyto.a.24360
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
The diagnostic work-up of patients suspected for myelodysplastic syndromes is challenging and mainly relies on bone marrow morphology and cytogenetics. In this study, we developed and prospectively validated a fully computational tool for flow cytometry diagnostics in suspected-MDS. The computational diagnostic workflow consists of methods for pre-processing flow cytometry data, followed by a cell population detection method (FlowSOM) and a machine learning classifier (Random Forest). Based on a six tubes FC panel, the workflow obtained a 90% sensitivity and 93% specificity in an independent validation cohort. For practical advantages (e.g., reduced processing time and costs), a second computational diagnostic workflow was trained, solely based on the best performing single tube of the training cohort. This workflow obtained 97% sensitivity and 95% specificity in the prospective validation cohort. Both workflows outperformed the conventional, expert analyzed flow cytometry scores for diagnosis with respect to accuracy, objectivity and time investment (less than 2 min per patient).
引用
收藏
页码:814 / 824
页数:11
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