Fluorescent cell barcoding in flow cytometry allows high-throughput drug screening and signaling profiling

被引:407
作者
Krutzik, PO [1 ]
Nolan, GP [1 ]
机构
[1] Stanford Univ, Dept Microbiol & Immunol, Baxter Lab Genet Pharmacol, Stanford, CA 94305 USA
关键词
D O I
10.1038/NMETH872
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Flow cytometry allows high-content, multiparameter analysis of single cells, making it a promising tool for drug discovery and profiling of intracellular signaling. To add high-throughput capacity to flow cytometry, we developed a cell-based multiplexing technique called fluorescent cell barcoding (FCB). In FCB, each sample is labeled with a different signature, or barcode, of fluorescence intensity and emission wavelengths, and mixed with other samples before antibody staining and analysis by flow cytometry. Using three FCB fluorophores, we were able to barcode and combine entire 96-well plates, reducing antibody consumption 100-fold and acquisition time to 5-15 min per plate. Using FCB and phospho-specific flow cytometry, we screened a small-molecule library for inhibitors of T cell-receptor and cytokine signaling, simultaneously determining compound efficacy and selectivity. We also analyzed IFN-gamma signaling in multiple cell types from primary mouse splenocytes, revealing differences in sensitivity and kinetics between B cells, CD4+ and CD4-T cells and CD11b-hi cells.
引用
收藏
页码:361 / 368
页数:8
相关论文
共 26 条
[1]   Fluorescence-intensity multiplexing: Simultaneous seven-marker, two-color immunophenotyping using flow cytometry [J].
Bradford, JA ;
Buller, G ;
Suter, M ;
Ignatius, M ;
Beechem, JM .
CYTOMETRY PART A, 2004, 61A (02) :142-152
[2]   Measurement of MAP kinase activation by flow cytometry using phospho-specific antibodies to MEK and ERK: Potential for pharmacodynamic monitoring of signal transduction inhibitors [J].
Chow, S ;
Patel, H ;
Hedley, DW .
CYTOMETRY, 2001, 46 (02) :72-78
[3]  
Clutter Matthew R, 2005, Drug Discov Today Technol, V2, P295, DOI 10.1016/j.ddtec.2005.08.010
[4]   11-color, 13-parameter flow cytometry: Identification of human naive T cells by phenotype, function, and T-cell receptor diversity [J].
De Rosa, SC ;
Herzenberg, LA ;
Herzenberg, LA ;
Roederer, M .
NATURE MEDICINE, 2001, 7 (02) :245-248
[5]   Flow cytometry for high-throughput, high-content screening [J].
Edwards, BS ;
Oprea, T ;
Prossnitz, ER ;
Sklar, LA .
CURRENT OPINION IN CHEMICAL BIOLOGY, 2004, 8 (04) :392-398
[6]   Detection of intracellular phosphorylated STAT-1 by flow cytometry [J].
Fleisher, TA ;
Dorman, SE ;
Anderson, JA ;
Vail, M ;
Brown, MR ;
Holland, SM .
CLINICAL IMMUNOLOGY, 1999, 90 (03) :425-430
[7]  
Fulton RJ, 1997, CLIN CHEM, V43, P1749
[8]   Suppressor of cytokine signaling 1 regulates IL-15 receptor signaling in CD8+CD44high memory T lymphocytes [J].
Ilangumaran, S ;
Ramanathan, S ;
La Rose, J ;
Poussier, P ;
Rottapel, R .
JOURNAL OF IMMUNOLOGY, 2003, 171 (05) :2435-2445
[9]   Flow cytometric analysis of cytokine receptor signal transduction [J].
Ilangumaran, S ;
Finan, D ;
Rottapel, R .
JOURNAL OF IMMUNOLOGICAL METHODS, 2003, 278 (1-2) :221-234
[10]   Single cell profiling of potentiated phospho-protein networks in cancer cells [J].
Irish, JM ;
Hovland, R ;
Krutzik, PO ;
Perez, OD ;
Bruserud, O ;
Gjertsen, BT ;
Nolan, GP .
CELL, 2004, 118 (02) :217-228