Clustering and network analysis of reverse phase protein array data

Research output: Chapter in Book/Conference proceedingChapterpeer-review

Abstract

Molecular profiling of proteins and phosphoproteins using a reverse phase protein array (RPPA) platform, with a panel of target-specific antibodies, enables the parallel, quantitative proteomic analysis of many biological samples in a microarray format. Hence, RPPA analysis can generate a high volume of multidimensional data that must be effectively interrogated and interpreted. A range of computational techniques for data mining can be applied to detect and explore data structure and to form functional predictions from large datasets. Here, two approaches for the computational analysis of RPPA data are detailed: the identification of similar patterns of protein expression by hierarchical cluster analysis and the modeling of protein interactions and signaling relationships by network analysis. The protocols use freely available, cross-platform software, are easy to implement, and do not require any programming expertise. Serving as data-driven starting points for further in-depth analysis, validation, and biological experimentation, these and related bioinformatic approaches can accelerate the functional interpretation of RPPA data.
Original languageEnglish
Title of host publicationMolecular Profiling
Subtitle of host publicationMethods and Protocols
EditorsVirginia Espina
Place of PublicationNew York, NY
PublisherHumana Press, Inc
Chapter12
Pages171-191
Number of pages21
Edition2nd
ISBN (Electronic)9781493969906
ISBN (Print)9781493969890, 9781493983605
DOIs
Publication statusPublished - 14 May 2017

Publication series

NameMethods in Molecular Biology
Volume1606
ISSN (Print)1064-3745
ISSN (Electronic)1940-6029

Keywords

  • bioinformatics
  • cell signaling
  • data analysis
  • hierarchical clustering
  • interaction networks
  • microarray analysis
  • pathway analysis
  • proteomics
  • reverse phase protein array
  • visualization

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