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J Ramiro-Díaz

Publications and source records attributed to J Ramiro-Díaz.

4 recordsLinked to original sources

DNA breakage detection-FISH (DBD-FISH) in human spermatozoa: technical variants evidence different structural features.

Non-irradiated and X-irradiated (80 Gy) human spermatozoa were processed for in situ DNA breakage detection-FISH (DBD-FISH) of the whole genome, following two alternative variations of the basic technique. In the first, cells were initially incubated in the alkaline unwinding solution for transformation of DNA breaks into single-stranded DNA (ssDNA) to be hybridized, followed by the lysing solutions for protein removal. In the second, incubation in the lysing solutions was carried out before the denaturation step. The first approach yielded two subpopulations. While most sperm nuclei were faintly labeled and had chromocenters, a small subpopulation was strongly and homogeneously labeled, due to extensive DNA breakage. X-ray exposure increased the surface and mean fluorescence intensity. Otherwise, when the denaturation step was performed after protein extraction, all sperm nuclei yielded strong and dispersed FISH signals. Protein removal allows access of the unwinding solution to the DNA, which has abundant alkali-labile sites, and thus gives rise to large areas of ssDNA that are labeled by FISH. X-ray exposure increased the dispersion of FISH signals but decreased their mean fluorescence intensity. A linear dose-response was generated using the second experimental variant, being 30 Gy the lowest dose for detecting induction of damage by X-rays in mature sperm chromatin. These results indicate that DBD-FISH is not only useful for in situ detection of DNA breakage but also for revealing structural features of chromatin.

DNA↗

Evidence of a differential organization of chromatin containing terminal or interstitial (TTAGGG)n repeats by in situ digestion with nucleases.

(TTAGGG)n sequence repeats in human telomeres and in Chinese hamster interstitial centromeric areas were digested in situ with exonuclease III (ExoIII) and exonuclease Bal 31. Incubation with AluI was performed beforehand to increase DNA breaks near telomere sequence areas. DNA removal at these specific regions was quantified by digital image analysis of the fluorescence in situ hybridization signal produced by a telomeric probe. Exonuclease III was 2.6 times more active in interstitial than in terminal telomeric sequence areas. Exonuclease Bal 31 was 2.3 times more effective in terminal than in interstitial telomeric sequence regions. These results support the hypothesis that chromatin is differentially organized in both telomeric sequence areas, despite their similar DNA composition.

Animals↗

Application of FISH for in situ detection and quantification of DNA breakage.

We describe a simple procedure that allows the use of fluorescence in situ hybridization (FISH) for in situ detection of DNA strand breaks in single cells (DBD-FISH: DNA Breakage Detection-FISH). After trapping within an agarose microgel, cells are incubated in an unwinding alkaline solution, deproteinized and dehydrated. Areas of single-stranded DNA are generated by the alkaline solution in proportion to the degree of DNA strand breakage. These then act as targets for FISH of whole genomic or region-specific probes (telomeric, human chromosome 8 painting, human alphoid DXZ1 locus, and human c-erbB-2 cosmid probes). Measurement of the amount and surface of FISH signals provides information on the breakage level in probed areas, permitting the assessment of possible intragenomic differences in sensitivity as well as intercellular heterogeneity in DNA damage induction or repair.

Animals↗