Integrating and mining diverse data in human immunological studies

被引:0
|
作者
Siebert, Janet C. [1 ]
Wagner, Brandie D. [2 ]
Juarez-Colunga, Elizabeth [2 ]
机构
[1] CytoAnalytics, Denver, CO USA
[2] Univ Colorado Denver, Colorado Sch Publ Hlth, Dept Biostat & Informat, Aurora, CO USA
关键词
GENE-EXPRESSION; VARIABLE SELECTION; RANDOM FOREST; NEURAL-NETWORK; DISCOVERY; CANCER; MODELS; CLASSIFICATION; IDENTIFICATION; INFLAMMATION;
D O I
10.4155/BIO.13.309
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Bioanalysts and immunologists can interrogate the immune system with a variety of high-throughput technologies such as gene expression, multiplex bead arrays and flow cytometry. Conceptually, these assays support systems immunology studies, in which phenomena can be measured and correlated across biological compartments. First, however, the resulting high-dimensional data must be combined in a consistent fashion that supports analysis of the data as an integrated whole. Next, analytical methods must be applied to the hundreds or thousands of readouts. We recommend the use of a four-part analytical pipeline, consisting of data integration, hypothesis generation, prediction and hypothesis testing, and validation. We describe a variety of established methods appropriate for these integrated datasets, and highlight their application to human immunological studies. Our goal is to provide bioanalysts, immunologists and data analysts with a valuable perspective with which to approach the multiassay high-dimensional datasets generated by contemporary immunological studies.
引用
收藏
页码:209 / 223
页数:15
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