Computational flow cytometry: helping to make sense of high-dimensional immunology data

被引:324
作者
Saeys, Yvan [1 ,2 ]
Van Gassen, Sofie [1 ,3 ]
Lambrecht, Bart N. [1 ,2 ,4 ]
机构
[1] VIB Inflammat Res Ctr, Technol Pk 927, B-9052 Ghent, Belgium
[2] Univ Ghent, Dept Internal Med, De Pintelaan 185, B-9000 Ghent, Belgium
[3] Dept Informat Technol, Technol Pk 15, B-9052 Ghent, Belgium
[4] Erasmus MC, Dept Pulm Med, Dr Molewaterpl 50, NL-3015 GE Rotterdam, Netherlands
基金
欧洲研究理事会;
关键词
HUMAN B-CELL; AUTOMATED IDENTIFICATION; REVEALS; VISUALIZATION; BIOCONDUCTOR; POPULATIONS; SUBSETS; HETEROGENEITY; PROGRESSION; EXPRESSION;
D O I
10.1038/nri.2016.56
中图分类号
R392 [医学免疫学]; Q939.91 [免疫学];
学科分类号
100102 ;
摘要
Recent advances in flow cytometry allow scientists to measure an increasing number of parameters per cell, generating huge and high-dimensional datasets. To analyse, visualize and interpret these data, newly available computational techniques should be adopted, evaluated and improved upon by the immunological community. Computational flow cytometry is emerging as an important new field at the intersection of immunology and computational biology; it allows new biological knowledge to be extracted from high-throughput single-cell data. This Review provides non-experts with a broad and practical overview of the many recent developments in computational flow cytometry.
引用
收藏
页码:449 / 462
页数:14
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