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The spatial localization of homologous chromosomes in human fibroblasts at mitosis

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Abstract

Chromosomes from ten human male fibroblast metaphases were completely reconstructed from electron micrographs of serially sectioned material. Chromosome centromere positions were determined by finding the three-dimensional coordinates of the centromere midpoint. The data set showed the identity of nine chromosome types (chromosomes 1, 2, 3, 6, 9, 16, 17, 18 and the Y chromosome) preserved as they are positioned in vivo. The results indicate that there is (1) no significant association of the homologous chromosomes examined, (2) a significant tendency for a central location of the Y chromosome and of chromosome 18, (3) a significant tendency for a peripheral location of chromosome 6, (4) no significant tendency for homologous chromosomes to reorganize as metaphase advances and (5) no significant differential condensation across the metaphase plate. Therefore, the only organization pattern observed for the centromeres of the homologous chromosomes studied is some sorting by size across the metaphase plate. These results may be typical of dividing cell types. Different chromosome arrangements are found in some non-dividing cell types (e.g. mammalian brain cells). The different distributions of chromosomes in different cell types can be considered as forms of “nuclear differentiation”. It is postulated that nuclear differentiation may be related to cell differentiation.

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References

  • Arnoldus EPJ, Peters ACB, Bots GTAM, Raap AK, Van der Ploeg M (1989) Somatic pairing of chromosome 1 centromeres in interphase nuclei of human cerebellum. Hum Genet 83:231–234

    Google Scholar 

  • Arnoldus EPJ, Noordermeyer IA, Peters ACB, Raap AK, Van der Ploeg M (1991) Interphase cytogenetics reveals somatic pairing of chromosome 17 centromeres in normal human brain tissue, but no trisomy 7 or sex chromosome loss. Cytogenet Cell Genet 56:214–216

    Google Scholar 

  • Avivi L, Feldmann M (1980) Arrangement of chromosomes in the interphase nucleus of plants. Hum Genet 55:281–295

    Google Scholar 

  • Bennett MD (1984) Nuclear architecture and its manipulation. In: Gustafson JP (ed) Gene manipulation in plant improvement. Plenum, New York, pp 469–502

    Google Scholar 

  • Borden J, Manuelidis L (1988) Movement of the X chromosome in epilepsy. Science 242:1687–1691

    Google Scholar 

  • Comings DE (1980) Arrangement of chromatin in the nucleus. Hum Genet 53:131–143

    Google Scholar 

  • Conover WJ (1980) Practical nonparametric statistics, 2nd edn. Wiley, New York

    Google Scholar 

  • Dauwerse JG, Wiegant J, Raap AK, Breuning MH, Ommen GJB van (1992) Multiple colors by fluorescence in situ hybridization using ratio-labeled DNA probes create a molecular karyotype. Hum Mol Genet 1:593–598

    Google Scholar 

  • Emmerich P, Loos P, Jauch A, Hopman AHN, Wiegant J, Higgins MJ, White BN, Ploeg M van der, Cremer C, Cremer T (1989) Double in situ hybridization in combination with digital image analysis: a new approach to study interphase chromosome tomography. Exp Cell Res 181:126–140

    Google Scholar 

  • Ferguson M, Ward DC (1992) Cell cycle dependent chromosomal movement in pre-mitotic human T-lymphocyte nuclei. Chromosoma 101:557–565

    Google Scholar 

  • Haaf T, Schmid M (1989) Centromeric association and non-random distribution of centromeres in human tumour cells. Hum Genet 81:137–143

    Google Scholar 

  • Haaf T, Grunenberg H, Schmid M (1990) Paired arrangement of nonhomologous centromeres during spermiogenesis. Exp Cell Res 187:157–161

    Google Scholar 

  • Henikoff S, Loughney K; Dreesen TD (1993) The enigma of dominant position effect variegation in Drosophila. In: Heslop-Harrison JS (Pat), Flavell RB (eds) The chromosome. Bios, Oxford, pp 193–206

    Google Scholar 

  • Heslop-Harrison JS, Smith JB, Bennett MD (1988) The absence of the somatic association of centromeres of homologous chromosomes in grass mitotic metaphases. Chromosoma 96:119–131

    Google Scholar 

  • Heslop-Harrison JS, Leitch AR, Schwarzacher T, Smith JB, Atkinson MD, Bennett MD (1989) The volumes and morphology of human chromosomes in mitotic reconstructions. Hum Genet 84:27–34

    Google Scholar 

  • Heslop-Harrison JS, Leitch AR, Schwarzacher T, Anamthawat-Jónsson K (1990) Detection and characterization of 1B/1R translocations in hexaploid wheat. Heredity 65:385–392

    Google Scholar 

  • Heslop-Harrison JS, Leitch AR, Schwarzacher T (1993) The physical organization of interphase nuclei. In: Heslop-Harrison JS (Pat), Flavell RB (eds) The chromosome. Bios, Oxford, pp 221–232

    Google Scholar 

  • Leitch AR, Schwarzacher T, Mosgöller W, Bennett MD, Heslop-Harrison JS (1991) Parental genomes are separated throughout the cell cycle in a plant hybrid. Chromosoma 101:206–213

    Google Scholar 

  • Lengauer C, Speicher MR, Popp S, Jauch A, Taniwaki M, Nagaraja R, Reithman HC, Donis-Keller H, D'Urso M, Schlessinger D, Cremer T (1993) Chromosomal bar codes produced by multicolor fluorescence in situ hybridization with multiple YAC clones and whole chromosome painting probes. Hum Mol Genet 2:505–512

    Google Scholar 

  • Manly BFJ (1991) Randomization and Monte Carlo methods in biology. Chapman and Hall, London, pp 281

    Google Scholar 

  • Manuelidis L (1984) Different central nervous system cell types display distinct and nonrandom arrangements of satellite DNA sequences. Proc Natl Acad Sci USA 81:3123–3127

    Google Scholar 

  • Manuelidis L, Borden J (1988) Reproducible compartmentalization of individual chromosome domains in human CNS cells revealed by in situ hybridization and three-dimensional reconstruction. Chromosoma 96:397–410

    Google Scholar 

  • Mosgöller W, Leitch AR, Brown JKM, Heslop-Harrison JS (1991) Chromosome arrangements in human fibroblasts at mitosis. Hum Genet 88:27–33

    Google Scholar 

  • Popp S, Scholl HP, Loos P, Jauch A, Stelzer E, Cremer C, Cremer T (1990) Distribution of chromosome 18 and X centric heterochromatin in the interphase nucleus of cultured human cells. Exp Cell Res 189:1–12

    Google Scholar 

  • Rabl C (1885) Über Zelltheilung. Morphol Jahrbl 10:214–330

    Google Scholar 

  • Rohlf FJ, Rodman TC, Flehinger BJ (1980) The use of nonmetric multidimensional scaling for the analysis of chromosomal association. Comput Biomed Res 13:19–35

    Google Scholar 

  • Vogel F, Krüger J (1983) Is there a general relationship between stimated chromosome distances in interphase and location of genes with related functions? Hum Genet 63:362–368

    Google Scholar 

  • Wollenberg C, Kiefaber MP, Zang KD (1982) Quantitative studies on the arrangement of human metaphase chromosomes. IX. Arrangement of chromosomes with and without spindle apparatus. Hum Genet 62:310–315

    Google Scholar 

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Leitch, A.R., Brown, J.K.M., Mosgöller, W. et al. The spatial localization of homologous chromosomes in human fibroblasts at mitosis. Hum Genet 93, 275–280 (1994). https://doi.org/10.1007/BF00212022

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  • DOI: https://doi.org/10.1007/BF00212022

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