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Uniparental Disomy and Genomic Imprinting in Humans

Published online by Cambridge University Press:  01 August 2014

A. Schinzel*
Affiliation:
Institute of Medical Genetics, University of Zürich, Zürich, Switzerland
*
Institute of Medical Genetics, University of Zürich, Rämistrasse 74, CH-8001 Zürich, Switzerland

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Uniparental disomy (UPD), the inheritance of both homologues from one chromosome from the same parent, was first proposed in 1980 by Erik Engel [1] to be a potential cause of congenital developmental defects in hymans. First hints from the premolecular era towards its existence came from instances where a pericentric inversion was present on one homologue in a parent and on both in one offspring [2] and where there was transmission of an interhomologous Robertsonian translocation (of chromosome 22) from a healthy mother to healthy offspring [3-4]. In mice, UPD was experimentally produced by crossing two mice lines with different Robertsonian translocations both involving the same chromosome [for 2 review see ref. 5].

Through this approach, it was possible to define imprinted regions, chromosomes and chromosomal segments for which either maternal or paternal or both types of uniparental disomy led to phenotypic abnormalities. The latter are explained by genomic imprinting, the differential silencing of a gene or genes from one of the parents (the mother or the father) during any stage of embryogenesis or later in life. If, for example, the maternal homologue of a given gene is imprinted (and hence only the paternal allele is active), maternal UPD would lead to loss of the active allele and thus might cause consequences due to loss of function.

Type
Research Article
Copyright
Copyright © The International Society for Twin Studies 1996

References

REFERENCES

1. Engel, E: A new genetic concept: Uniparental disomy and its potential effect, isodisomy. Am J Med Genet 1980; 6: 137143.Google Scholar
2. Carpenter, NJ, Say, B, Barber, ND: A homozygote for pericentric inversion of chromosome 4. J Med Genet 1982; 19: 469471.Google Scholar
3. Palmer, CG, Schwartz, S, Hodes, ME: Transmission of a balanced homologous t(22q; 22q) translocation from mother to normal daughter. Clin Genet 1980, 17: 418422.Google Scholar
4. Kirkels, VGHJ, Hustinx, TWJ, Scheres, JMJC: Habitual abortion and translocation (22q;22q): Unexpected transmission from a mother to her phenotypically normal daughter. Clin Genet 1980; 18: 456461.CrossRefGoogle ScholarPubMed
5. Cattanach, BM, Jones, J: Genetic imprinting in the mouse: Implications for gene regulation. J Inherit Metab Dis 1994; 17: 404420.Google Scholar
6. Robinson, WP, Bernasconi, F, Basaran, S, Yüksel-Apak, M, Neri, G, Serville, F, Balicek, P, Haluza, R, Farah, LMS, Luleci, G, Schinzel, AA: A somatic origin of homologous Robertsonian transiocations and isochromosomes. Am J Hum Genet 1994; 54: 290302.Google Scholar
7. Lindenbaum, RH, Woods, CG, Norbury, CG, Povey, S, Rysiecki, G: An individual with maternal disomy of chromosome 4 and iso(4p). Am J Hum Genet 1991; 49: A285.Google Scholar
8. Eggerding, FA, Schonberg, SA, Chehab, FF, Norton, ME, Cox, VA, Epstein, CJ: Uniparental isodisomy for paternal 7p and maternal 7q in a child with growth retardation. Am J Hum Genet 1994; 55: 253265.Google Scholar
9. Nicholls, RD, Knoll, JHM, Butler, MG, Karam, S, LaLande, M: Genetic imprinting suggested by maternal heterodisomy in non-deletion Prader-Willi syndrome. Nature 342: 281285.Google Scholar
10. Smith, A, Murray, R, Dendulk, G: Familial deletion. Ann Genet 1983; 26: 9193.Google ScholarPubMed
11. Smith, A, Dengler, DR, Berankova, J, Woods, CG, Trioio, O: Familial unbalanced translocation t(8;15)(p23.3;q11) with uniparental disomy in Angelman syndrome. Hum Genet 1994; 93: 471473.Google Scholar
12. Smith, A, Noel, M: A girl with the Prader-Willi syndrome and Robertsonian translocation 45, XX, t(14;15) (p11;q11) which was present in three normal family members. Hum Genet 1980; 55: 271273.CrossRefGoogle Scholar
13. Wu, RH, Hasen, J, Warburton, D: Primary hypogonadism and 13/15 chromosome translocation in Prader-Labhart-Willi syndrome. Hormone Res 1981; 15: 148158.Google ScholarPubMed
14. Smeets, DFCM, Hamel, BCJ, Nelen, MR, Smeets, HJM, Bollen, JHM, Smits, APT, van Oost, BA: Prader-Willi syndrome and Angelman syndrome in cousins from a family with a translocation between chromosomes 6 and 15. New Engl J Med 1992; 326: 807811.Google Scholar
15. Temple, JK, Cockwell, A, Hassold, T, Pettay, D, Jacobs, P: Maternal uniparental disomy for chromosome 14. J Med Genet 1991; 28: 511514.CrossRefGoogle ScholarPubMed
16. Pentao, L, Lewis, RA, Ledbetter, DH, Patel, PI, Lupski, JR: Maternal uniparental isodisomy of chromosome 14: Association with autosomal recessive rod monochromacy. Am J Hum Genet 1992; 50: 690699.Google Scholar
17. Woodage, T, Prasad, M, Dixon, JW, Selby, RE, Romain, DR, Columbano-Green, LM, Graham, D, Rogan, PK, Seip, JR, Smith, A, Trent, RJ: Bloom syndrome and maternal uniparental disomy for chromosome 15. Am J Hum Genet 1994; 55: 7480.Google ScholarPubMed
18. Sulisalo, T, de la Chapelle, A, Kaitila, I: Uniparental disomy as an explanation of presumptive low penetrance. Am J Hum Genet 1994; 55: A7.Google Scholar
19. Welch, TR, Beischel, L, Choi, E, Balakrishnan, K, Bishof, NA: Uniparental isodisomy 6 associated with deficiency of the fourth component of complement. J Clin Invest 1990; 86: 675678.Google Scholar
20. Morichon-Delvallez, N, Seques, B, Pinson, MP, Berube, D, Dommerques, M, Aubry, MC, Cessot, F, Lyonnet, S, Nunnich, A, Vekemans, M: Maternal uniparental disomy for chromosome 14 by secondary nondisjunction of an initial trisomy. Am J Hum Genet 1994; 55: A379.Google Scholar
21. Sirchia, SM, de Andreis, C, Pariani, S, Grimoldi, MG, Molinari, A, Buscaglia, M, Simoni, G: Chromosome 14 maternal uniparental disomy in the euploid cell line of a fetus with mosaic 46, XX/47, XX, +14 karyotype. Hum Genet 1994; 94: 355358.Google Scholar
22. Purvis-Smith, SG, Saville, T, Manass, S, Yip, MY, Lam-Po-Tang, PRL, Duffy, B, Johnston, H, et al Uniparental disomy 15 resulting from fcorrection~ of an initial trisomy 15. Am J Hum Genet 1992; 50: 13481350,Google Scholar
23. Cassidy, SB, Lai, LW, Erickson, RP, Magnuson, L, Thomas, E, Gendron, Hermann J: Trisomy 15 with loss of the paternal 15 as a cause of Prader-Willi syndrome due to maternal disomy. Am J Hum Genet 1992; 51: 701708.Google Scholar
24. Kalousek, DK, Langlois, S, Barrett, IJ, Yam, I, Wilson, DR, Howard-Peebles, PN, Johnson, MP, et al.: Uniparental disomy for chromosome 16 in humans. Am J Hum Genet 1993; 52: 816.Google Scholar
25. Kotzot, D, Schmitt, S, Bernasconi, F, Robinson, WP, Lurie, IW, Ilyina, H, Méhes, K, Hamel, BCJ, Otten, BJ, Hergersberg, M, Werder, E, Schoenle, E, Schinzel, A: Uniparental disomy 7 in Silver-Russell syndrome and primordial growth retardation. Hum Mol Genet in press.Google Scholar
26. Henry, I, Bonaiti-Pellie, C, Chehensse, V, Beldjord, C, Schwartz, C, Utermann, G, Junien, C: Uniparental paternal disomy in a genetic cancer-predisposing syndrome. Nature 1991; 351: 665667.Google Scholar
27. Henry, I, Puech, A, Riesewijk, A, Ahnine, L, Mannens, M, Beldjord, C, Bitoun, P, Tournade, MF, Landrieu, P, Junien, C: Somatic mosaicism for partial paternal isodisomy in Wiedemann-Beck-with syndrome: A post-fertilization event. Eur J Hum Genet 1993; 1: 1929.CrossRefGoogle ScholarPubMed
28. Antonarakis, SE, Blouin, JL, Maher, J, Avramopoulos, D, Thomas, G, Talbot, CC Jr. Maternal uniparental disomy for human chromosome 14, due to loss of a chromosome 14 from somatic cells with t(13;14) trisomy 14. Am J Hum Genet 1993; 52: 11451152.Google Scholar
29. Wolstenholme, J: An audit of trisomy 16 in man. Prenat Diagn 1995; 15: 109121.Google Scholar
30. Robinson, WP, Bernasconi, F, Mutirangura, A, Ledbetter, DH, Langlois, S, Malcolm, S, Morris, M, et al: Nondisjunction of chromosome 15: Origin and recombination. Am J Hum Genet 1993; 53: 740751.Google ScholarPubMed
31. Antonarakis, SE, Avramopoulos, D, Blouin, JL, Talbot, CC, Schinzel, AA: Mitotic (somatic cell) errors cause trisomy 21 in about 4.5% of cases and are not associated with advanced maternal age. Nat Genet 1993; 3: 146150.Google Scholar
32. Spence, JE, Perciaccante, RG, Greig, GM: Uniparental disomy as a mechanism for human genetic disease. Am J Hum Genet 1988; 42: 217226.Google Scholar
33. Voss, R, Ben-Simon, E, Avital, A, et al: Isodisomy of chromosome 7 in a patient with cystic fibrosis: could uniparental disomy be common in humans? Am J Hum Genet 1989; 42: 373380.Google Scholar
34. Schinzel, A, McKusick, V, Francomano, C: Report of the committee for clinical disorders and chromosome aberrations. Human Gene Mapping 1994; A Compendium. Cuticchia, AJ Pearson, PL (eds): Baltimore, The Johns Hopkins University Press, 1995.Google Scholar
35. Robinson, WP, Bottani, A, Yagang, X, Balakrishnan, J, Binkert, F, Machler, M, Prader, A, Schinzel, AA: Molecular, cytogenetic, and clinical investigations of Prader-Willi syndrome patients. Am J Hum Genet 1991; 49: 12191234.Google Scholar