Analysis of human chromosomes by imaging flow cytometry

被引:5
作者
Stanley, Jason [1 ]
Hui, Henry [1 ]
Erber, Wendy [1 ,2 ]
Clynick, Britt [3 ]
Fuller, Kathy [1 ]
机构
[1] Univ Western Australia, Sch Biomed Sci, Translat Canc Pathol Lab, Crawley, WA, Australia
[2] PathWest Lab Med, Nedlands, WA, Australia
[3] Harry Perkins Inst Med Res, Inst Resp Hlth, Nedlands, WA, Australia
关键词
chromosome; chronic lymphocytic leukemia; del(17p); FISH; fluorescence in situ hybridization; imaging flow cytometry; immunophenotyping; IN-SITU HYBRIDIZATION; TELOMERE LENGTH; INSITU HYBRIDIZATION; REPETITIVE DNA; CELLS; ABERRATIONS; SUSPENSION; FISH; SUBPOPULATIONS; CONSTRUCTION;
D O I
10.1002/cyto.b.22023
中图分类号
R446 [实验室诊断]; R-33 [实验医学、医学实验];
学科分类号
1001 ;
摘要
Chromosomal analysis is traditionally performed by karyotyping on metaphase spreads, or by fluorescent in situ hybridization (FISH) on interphase cells or metaphase spreads. Flow cytometry was introduced as a new method to analyze chromosomes number (ploidy) and structure (telomere length) in the 1970s with data interpretation largely based on fluorescence intensity. This technology has had little uptake for human cytogenetic applications primarily due to analytical challenges. The introduction of imaging flow cytometry, with the addition of digital images to standard multi-parametric flow cytometry quantitative tools, has added a new dimension. The ability to visualize the chromosomes and FISH signals overcomes the inherent difficulties when the data is restricted to fluorescence intensity. This field is now moving forward with methods being developed to assess chromosome number and structure in whole cells (normal and malignant) in suspension. A recent advance has been the inclusion of immunophenotyping such that antigen expression can be used to identify specific cells of interest for specific chromosomes and their abnormalities. This capability has been illustrated in blood cancers, such as chronic lymphocytic leukemia and plasma cell myeloma. The high sensitivity and specificity achievable highlights the potential imaging flow cytometry has for cytogenomic applications (i.e., diagnosis and disease monitoring). This review introduces and describes the development, current status, and applications of imaging flow cytometry for chromosomal analysis of human chromosomes.
引用
收藏
页码:541 / 553
页数:13
相关论文
共 86 条
[1]   Diagnostic utility of telomere length testing in a hospital-based setting [J].
Alder, Jonathan K. ;
Hanumanthu, Vidya Sagar ;
Strong, Margaret A. ;
DeZern, Amy E. ;
Stanley, Susan E. ;
Takemoto, Clifford M. ;
Danilova, Ludmilla ;
Applegate, Carolyn D. ;
Bolton, Stephen G. ;
Mohr, David W. ;
Brodsky, Robert A. ;
Casella, James F. ;
Greider, Carol W. ;
Jackson, J. Brooks ;
Armanios, Mary .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2018, 115 (10) :E2358-E2365
[2]   CHROMOSOME-SPECIFIC DNA HYBRIDIZATION IN SUSPENSION FOR FLOW CYTOMETRIC DETECTION OF CHIMERISM IN BONE-MARROW TRANSPLANTATION AND LEUKEMIA [J].
ARKESTEIJN, GJA ;
ERPELINCK, SLA ;
MARTENS, ACM ;
HAGENBEEK, A .
CYTOMETRY, 1995, 19 (04) :353-360
[3]   Telomeropathies: Etiology, diagnosis, treatment and follow-up. Ethical and legal considerations [J].
Armando, Romina G. ;
Mengual Gomez, Diego L. ;
Maggio, Julian ;
Sanmartin, Maria C. ;
Gomez, Daniel E. .
CLINICAL GENETICS, 2019, 96 (01) :3-16
[4]   Telomere length measurement-Caveats and a critical assessment of the available technologies and tools [J].
Aubert, Geraldine ;
Hills, Mark ;
Lansdorp, Peter M. .
MUTATION RESEARCH-FUNDAMENTAL AND MOLECULAR MECHANISMS OF MUTAGENESIS, 2012, 730 (1-2) :59-67
[5]   Genetic abnormalities and survival in multiple myeloma: the experience of the Intergroupe Francophone du Myelome [J].
Avet-Loiseau, Herve ;
Attal, Michel ;
Moreau, Philippe ;
Charbonnel, Catherine ;
Garban, Frederic ;
Hulin, Cyrille ;
Leyvraz, Serge ;
Michallet, Mauricette ;
Yakoub-Agha, Ibrahim ;
Garderet, Laurent ;
Marit, Gerald ;
Michaux, Lucienne ;
Voillat, Laurent ;
Renaud, Marc ;
Grosbois, Bernard ;
Guillerm, Gaelle ;
Benboubker, Lotfi ;
Monconduit, Mathieu ;
Thieblemont, Catherine ;
Casassus, Philippe ;
Caillot, Denis ;
Stoppa, Anne-Marie ;
Sotto, Jean-Jacques ;
Wetterwald, Marc ;
Dumontet, Charles ;
Fuzibet, Jean-Gabriel ;
Azais, Isabelle ;
Dorvaux, Veronique ;
Zandecki, Marc ;
Bataille, Regis ;
Minvielle, Stephane ;
Harousseau, Jean-Luc ;
Facon, Thierry ;
Mathiot, Claire .
BLOOD, 2007, 109 (08) :3489-3495
[6]   Flow cytometry and FISH to measure the average length of telomeres (flow FISH) [J].
Baerlocher, Gabriela M. ;
Vulto, Irma ;
de Jong, Gary ;
Lansdorp, Peter M. .
NATURE PROTOCOLS, 2006, 1 (05) :2365-2376
[7]   Imaging Flow Cytometry: Coping with Heterogeneity in Biological Systems [J].
Barteneva, Natasha S. ;
Fasler-Kan, Elizaveta ;
Vorobjev, Ivan A. .
JOURNAL OF HISTOCHEMISTRY & CYTOCHEMISTRY, 2012, 60 (10) :723-733
[8]   Imaging flow cytometry [J].
Basiji, David ;
O'Gorman, Maurice R. G. .
JOURNAL OF IMMUNOLOGICAL METHODS, 2015, 423 :1-2
[9]   Cellular image analysis and imaging by flow cytometry [J].
Basiji, David A. ;
Ortyn, William E. ;
Liang, Luchuan ;
Venkatachalam, Vidya ;
Morrissey, Philip .
CLINICS IN LABORATORY MEDICINE, 2007, 27 (03) :653-+
[10]  
Basiji DA, 2016, METHODS MOL BIOL, P13, DOI 10.1007/978-1-4939-3302-0_2