The art and applications of fluorescence in situ hybridization in endocrine pathology

被引:7
|
作者
Kontogeorgos, G [1 ]
机构
[1] G Gennimatas Athens Gen Hosp, Dept Pathol, Athens 11527, Greece
关键词
chromosomes; cytogenetics; fluorescence; comparative genomic hybridization; hybridization; endocrine tumors; multiple endocrine neoplasia-1;
D O I
10.1385/EP:11:2:123
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Fluorescence in situ hybridization (FISH) or molecular cytogenetics is currently recognized as a reliable, sensitive, and reproducible technique for identifying the copy number and structure of chromosomes. FISH combines molecular genetics with classic cytogenetics and allows simultaneous morphologic evaluation on a single slide. Centromeric DNA probes are used to detect specific chromosomes and telomeric probes to demonstrate all chromosomes, Sequence-specific probes can localize in situ a single gene copy on a specific chromosome locus, FISH allows cytogenetic investigation of metaphase spreads and interphase nuclei. Several protocols have been proposed to analyze preparations from fresh samples or archival material. Comparative genomic hybridization (CGH) is a novel cytogenetic technique, which combines FISH with automatic digital image analysis. Comparative analysis of the hybridization products of tumor DNA and reference DNA with normal metaphase chromosomes, each labeled with color different fluorochrome, can retrieve chromosomal imbalances of the entire genome in a single experiment. FISH and CGH are powerful morphologic tools in understanding physiologic mechanisms and in resolving problems of the pathogenesis of several diseases, These techniques shed light on the cytogenetic background in many endocrinological disorders, providing a better understanding of the activities and alterations of endocrine cell function.
引用
收藏
页码:123 / 136
页数:14
相关论文
共 50 条
  • [21] Fluorescence In Situ Hybridization
    Tsuchiya, Karen D.
    CLINICS IN LABORATORY MEDICINE, 2011, 31 (04) : 525 - +
  • [22] Fluorescence in situ hybridization in plants: recent developments and future applications
    Jiang, Jiming
    CHROMOSOME RESEARCH, 2019, 27 (03) : 153 - 165
  • [23] Clinical applications of fluorescence in situ and comparative genomic hybridization techniques
    Balázs, M
    CYTOMETRY, 2001, 46 (03): : 196 - 197
  • [24] Principle and applications of multicolor fluorescence in situ hybridization technology.
    Yang, MJ
    Cao, J
    PROGRESS IN BIOCHEMISTRY AND BIOPHYSICS, 1998, 25 (04) : 333 - 337
  • [25] Fluorescence in situ hybridization in plants: recent developments and future applications
    Jiming Jiang
    Chromosome Research, 2019, 27 : 153 - 165
  • [26] Specificity of interphase fluorescence in situ hybridization for detection of chromosome aberrations in tumor pathology
    Tibiletti, MG
    CANCER GENETICS AND CYTOGENETICS, 2004, 155 (02) : 143 - 148
  • [27] Allelotypes and fluorescence in situ hybridization profiles of poorly differentiated endocrine carcinomas of different sites
    Furlan, D
    Bernasconi, B
    Uccella, S
    Cerutti, R
    Carnevali, I
    Capella, C
    CLINICAL CANCER RESEARCH, 2005, 11 (05) : 1765 - 1775
  • [28] Applications and technical challenges of fluorescence in situ hybridization in stem cell research
    Weier, HUG
    Chu, LW
    Murnane, JP
    Weier, JF
    BLOOD CELLS MOLECULES AND DISEASES, 2004, 32 (01) : 68 - 76
  • [29] Multitarget fluorescence in situ hybridization diagnostic applications in solid and hematological tumors
    Zito Marino, Federica
    Brunelli, Matteo
    Rossi, Giulio
    Calabrese, Giuseppe
    Calio, Anna
    Nardiello, Pamela
    Martignoni, Guido
    Squire, Jeremy A.
    Cheng, Liang
    Massi, Daniela
    Franco, Renato
    EXPERT REVIEW OF MOLECULAR DIAGNOSTICS, 2021, 21 (02) : 161 - 173
  • [30] Applications of fluorescence in situ hybridization in detection of disease biomarkers and personalized medicine
    Bozorg-Ghalati F.
    Mohammadpour I.
    Ranjbaran R.
    Comparative Clinical Pathology, 2019, 28 (1) : 3 - 10