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New concepts to improve resolution and sensitivity of molecular cytogenetic diagnostics by multicolor fluorescense in situ hybridization

dc.creatorSaracoglu, K.
dc.creatorBrown, J.
dc.creatorKearney, L.
dc.creatorUhrig, S.
dc.creatorAzofeifa Navas, Jorge
dc.creatorFauth, Christine
dc.creatorSpeicher, Michael R.
dc.creatorEils, R.
dc.date.accessioned2015-04-17T16:33:45Z
dc.date.available2015-04-17T16:33:45Z
dc.date.issued2001
dc.descriptionArtículo científico -- Universidad de Costa Rica, Instituto de Investigaciones en Salud, 2001. Este documento es privado debido a limitaciones de derechos de autor.es_ES
dc.description.abstractBackground: Routine application of multicolor fluorescence in situ hybridization (M-FISH) technology for molecular cytogenetic diagnostics has been hampered by several technical limitations. First, when using chromosome-specific painting probes, there is a limit in cytogenetic resolution of approximately 2–3 Mb, which can mask hidden structural abnormalities that have a significant clinical effect. Second, using whole chromosome painting probes, intrachromosomal rearrangements cannot be detected and the exact localization of breakpoints is often not possible. Methods: We suggest the use of multiplex-labeled region or locus- specific probes in combination with an optimal probe design to improve the sensitivity and resolution of the M-FISH technology. To allow the application of this assay in routine diagnostics, we developed a multipurpose image analysis system. Results: goldFISH was applied to the study of cryptic translocations in mental retardation patients and to the study of high-resolution breakpoint mapping in non-small cell lung cancer patients. For an individual with mental retardation, who had an apparently normal karyotype by G-banding, we detected an unbalanced translocation involving chromosomes 2 and 7. Conclusions: In combination with optimally designed probe kits, goldFISH overcomes most of the present limitations of the M-FISH technology and results in virtually 100% reliability for detecting interchromosomal and intra-chromosomal rearrangements.es_ES
dc.description.procedenceUCR::Vicerrectoría de Investigación::Unidades de Investigación::Ciencias de la Salud::Instituto de Investigaciones en Salud (INISA)es_ES
dc.description.sponsorshipinfo:eu-repo/grantAgreement/Universidad de Costa Rica/Instituto de Investigaciones en Salud////es_ES
dc.identifier.doihttps://doi.org/10.1002/1097-0320(20010501)44:1%3C7::AID-CYTO1076%3E3.0.CO;2-G
dc.identifier.issnESSN: 1552-4930
dc.identifier.urihttps://hdl.handle.net/10669/11388
dc.language.isoen_USes_ES
dc.rightsacceso embargado
dc.sourceCytometry 44(1): 7-015es_ES
dc.subjectmulticolor-FISHes_ES
dc.subjectclassificationes_ES
dc.subjectoptimal probe designes_ES
dc.subjectimage analysises_ES
dc.subjectGeneticses_ES
dc.subjectGenéticaes_ES
dc.titleNew concepts to improve resolution and sensitivity of molecular cytogenetic diagnostics by multicolor fluorescense in situ hybridizationes_ES
dc.typeartículo original

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