Flow Cytometry Bioinformatics

被引:72
作者
O'Neill, Kieran [1 ,2 ]
Aghaeepour, Nima [1 ,2 ]
Spidlen, Josef [1 ]
Brinkman, Ryan [1 ,3 ]
机构
[1] BC Canc Agcy, Terry Fox Lab, Vancouver, BC, Canada
[2] Univ British Columbia, Bioinformat Grad Program, Vancouver, BC V5Z 1M9, Canada
[3] Univ British Columbia, Dept Med Genet, Vancouver, BC, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
CELL MASS CYTOMETRY; DATA FILE STANDARD; BIOCONDUCTOR PACKAGE; HIERARCHY; SUBSETS; FUTURE;
D O I
10.1371/journal.pcbi.1003365
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Flow cytometry bioinformatics is the application of bioinformatics to flow cytometry data, which involves storing, retrieving, organizing, and analyzing flow cytometry data using extensive computational resources and tools. Flow cytometry bioinformatics requires extensive use of and contributes to the development of techniques from computational statistics and machine learning. Flow cytometry and related methods allow the quantification of multiple independent biomarkers on large numbers of single cells. The rapid growth in the multidimensionality and throughput of flow cytometry data, particularly in the 2000s, has led to the creation of a variety of computational analysis methods, data standards, and public databases for the sharing of results. Computational methods exist to assist in the preprocessing of flow cytometry data, identifying cell populations within it, matching those cell populations across samples, and performing diagnosis and discovery using the results of previous steps. For preprocessing, this includes compensating for spectral overlap, transforming data onto scales conducive to visualization and analysis, assessing data for quality, and normalizing data across samples and experiments. For population identification, tools are available to aid traditional manual identification of populations in two-dimensional scatter plots (gating), to use dimensionality reduction to aid gating, and to find populations automatically in higher dimensional space in a variety of ways. It is also possible to characterize data in more comprehensive ways, such as the density-guided binary space partitioning technique known as probability binning, or by combinatorial gating. Finally, diagnosis using flow cytometry data can be aided by supervised learning techniques, and discovery of new cell types of biological importance by high-throughput statistical methods, as part of pipelines incorporating all of the aforementioned methods. Open standards, data, and software are also key parts of flow cytometry bioinformatics. Data standards include the widely adopted Flow Cytometry Standard (FCS) defining how data from cytometers should be stored, but also several new standards under development by the International Society for Advancement of Cytometry (ISAC) to aid in storing more detailed information about experimental design and analytical steps. Open data is slowly growing with the opening of the CytoBank database in 2010 and FlowRepository in 2012, both of which allow users to freely distribute their data, and the latter of which has been recommended as the preferred repository for MIFlowCyt-compliant data by ISAC. Open software is most widely available in the form of a suite of Bioconductor packages, but is also available for web execution on the GenePattern platform.
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页数:10
相关论文
共 81 条
  • [21] [Anonymous], CLASS RES FIL FORM
  • [22] [Anonymous], 2003, PRACTICAL FLOW CYTOM
  • [23] [Anonymous], FLOWJO
  • [24] Flow cytometry and FISH to measure the average length of telomeres (flow FISH)
    Baerlocher, Gabriela M.
    Vulto, Irma
    de Jong, Gary
    Lansdorp, Peter M.
    [J]. NATURE PROTOCOLS, 2006, 1 (05) : 2365 - 2376
  • [25] HyperLog - A flexible log-like transform for negative, zero, and positive valued data
    Bagwell, CB
    [J]. CYTOMETRY PART A, 2005, 64A (01) : 34 - 42
  • [26] FLUORESCENCE SPECTRAL OVERLAP COMPENSATION FOR ANY NUMBER OF FLOW-CYTOMETRY PARAMETERS
    BAGWELL, CB
    ADAMS, EG
    [J]. ANNALS OF THE NEW YORK ACADEMY OF SCIENCES, 1993, 677 : 167 - 184
  • [27] B Cells With High Side Scatter Parameter by Flow Cytometry Correlate With Inferior Survival in Diffuse Large B-Cell Lymphoma
    Bashashati, Ali
    Johnson, Nathalie A.
    Khodabakhshi, Alireza Hadj
    Whiteside, Matthew D.
    Zare, Habil
    Scott, David W.
    Lo, Kenneth
    Gottardo, Raphael
    Brinkman, Fiona S. L.
    Connors, Joseph M.
    Slack, Graham W.
    Gascoyne, Randy D.
    Weng, Andrew P.
    Brinkman, Ryan R.
    [J]. AMERICAN JOURNAL OF CLINICAL PATHOLOGY, 2012, 137 (05) : 805 - 814
  • [28] Single-cell mass cytometry adapted to measurements of the cell cycle
    Behbehani, Gregory K.
    Bendall, Sean C.
    Clutter, Matthew R.
    Fantl, Wendy J.
    Nolan, Garry P.
    [J]. CYTOMETRY PART A, 2012, 81A (07) : 552 - 566
  • [29] From single cells to deep phenotypes in cancer
    Bendall, Sean C.
    Nolan, Garry P.
    [J]. NATURE BIOTECHNOLOGY, 2012, 30 (07) : 639 - 647
  • [30] Single-Cell Mass Cytometry of Differential Immune and Drug Responses Across a Human Hematopoietic Continuum
    Bendall, Sean C.
    Simonds, Erin F.
    Qiu, Peng
    Amir, El-ad D.
    Krutzik, Peter O.
    Finck, Rachel
    Bruggner, Robert V.
    Melamed, Rachel
    Trejo, Angelica
    Ornatsky, Olga I.
    Balderas, Robert S.
    Plevritis, Sylvia K.
    Sachs, Karen
    Pe'er, Dana
    Tanner, Scott D.
    Nolan, Garry P.
    [J]. SCIENCE, 2011, 332 (6030) : 687 - 696