J Pediatr Genet 2017; 06(03): 165-168
DOI: 10.1055/s-0037-1599195
Original Article
Georg Thieme Verlag KG Stuttgart · New York

Unusual de novo Partial Trisomy 17p12p11.2 due to Unbalanced Insertion into 5p13.1 in a Severely Affected Boy

Luis Alberto Mendez-Rosado
1   National Center of Human Genetics, Havana, Cuba
,
Araceli Lantigua
1   National Center of Human Genetics, Havana, Cuba
,
Juan Galarza
1   National Center of Human Genetics, Havana, Cuba
,
Ahmed B. Hamid Al-Rikabi
2   Jena University Hospital, Friedrich Schiller University, Institute of Human Genetics, Jena, Germany
,
Monika Ziegler
2   Jena University Hospital, Friedrich Schiller University, Institute of Human Genetics, Jena, Germany
,
Thomas Liehr
2   Jena University Hospital, Friedrich Schiller University, Institute of Human Genetics, Jena, Germany
› Institutsangaben
Weitere Informationen

Publikationsverlauf

09. Dezember 2016

18. Januar 2017

Publikationsdatum:
07. März 2017 (online)

Abstract

Gain of copy numbers can be due to different chromosomal rearrangements such as direct or indirect duplications, translocations, small supernumerary marker chromosomes, or insertions. In a 3-year-old boy with dysmorphic features and developmental delay, chromosome analyses revealed a derivative chromosome 5. Microdissection and reverse fluorescence in situ hybridization identified the in 5p13.1 inserted part as 17p12-p11.2 material. Thus the patient suffered from a rare combination of genomic disorder, that is, Charcot-Marie-Tooth disease type 1A and Potocki-Lupski syndrome. Parental studies indicated that the abnormality was de novo in origin. As the question how this rearrangement arose cannot be answered conclusively, formal genetic counseling is warranted, which includes a discussion regarding the possibility of gonadal mosaicism. In conclusion, this case highlights that chromosome 17p is genetically relatively instable, and thus it can lead to rare chromosomal conditions.

 
  • References

  • 1 Morrow EM. Genomic copy number variation in disorders of cognitive development. J Am Acad Child Adolesc Psychiatry 2010; 49 (11) 1091-1104
  • 2 Starke H, Senger G, Kossakiewicz M. , et al. Maternal insertion of 18q11.2-q12.2 in 18p11.3 of the same chromosome analysed by microdissection and multicolour banding (MCB). Prenat Diagn 2001; 21 (12) 1049-1052
  • 3 Sheth F, Gohel N, Liehr T. , et al. Gain of chromosome 4qter and loss of 5pter: an unusual case with features of cri du chat syndrome. Case Rep Genet 2012; 2012: 153405. Doi: 10.1155/2012/153405
  • 4 Kontodiou M, Daskalakis G, Vetro A. , et al. Complex rearrangement involving three chromosomes, four breakpoints and a 2.7-Mb deletion in the 18q segment observed in a girl with mild learning difficulties. Cytogenet Genome Res 2015; 147 (2-3): 118-123
  • 5 Liehr T. Small supernumerary marker chromosomes detected in connection with infertility. Zhonghua Nan Ke Xue 2014; 20 (09) 771-780
  • 6 Chen KS, Manian P, Koeuth T. , et al. Homologous recombination of a flanking repeat gene cluster is a mechanism for a common contiguous gene deletion syndrome. Nat Genet 1997; 17 (02) 154-163
  • 7 Silengo M, Belligni E, Molinatto C. , et al. Eyebrow anomalies as a diagnostic sign of genomic disorders. Clin Genet 2010; 77 (01) 28-31
  • 8 van Paassen BW, van der Kooi AJ, van Spaendonck-Zwarts KY, Verhamme C, Baas F, de Visser M. PMP22 related neuropathies: Charcot-Marie-Tooth disease type 1A and hereditary neuropathy with liability to pressure palsies. Orphanet J Rare Dis 2014; 9: 38. Doi: 10.1186/1750-1172-9-38
  • 9 Potocki L, Chen KS, Park SS. , et al. Molecular mechanism for duplication 17p11.2- the homologous recombination reciprocal of the Smith-Magenis microdeletion. Nat Genet 2000; 24 (01) 84-87
  • 10 Stankiewicz P, Shaw CJ, Dapper JD. , et al. Genome architecture catalyzes nonrecurrent chromosomal rearrangements. Am J Hum Genet 2003; 72 (05) 1101-1116
  • 11 Bi W, Yan J, Stankiewicz P. , et al. Genes in a refined Smith-Magenis syndrome critical deletion interval on chromosome 17p11.2 and the syntenic region of the mouse. Genome Res 2002; 12 (05) 713-728
  • 12 Park SS, Stankiewicz P, Bi W. , et al. Structure and evolution of the Smith-Magenis syndrome repeat gene clusters, SMS-REPs. Genome Res 2002; 12 (05) 729-738
  • 13 Lupski JR, de Oca-Luna RM, Slaugenhaupt S. , et al. DNA duplication associated with Charcot-Marie-Tooth disease type 1A. Cell 1991; 66 (02) 219-232
  • 14 Charcot-Marie-Tooth Disease Fact Sheet. National Institute of Neurological Disorders and Stroke Website. Available at https://www.ninds.nih.gov/Disorders/Patient-Caregiver-Education/Fact-Sheets/Charcot-Marie-Tooth-Disease-Fact-Sheet . Accessed February 2017.
  • 15 Barbouti A, Stankiewicz P, Nusbaum C. , et al. The breakpoint region of the most common isochromosome, i(17q), in human neoplasia is characterized by a complex genomic architecture with large, palindromic, low-copy repeats. Am J Hum Genet 2004; 74 (01) 1-10
  • 16 Schrander-Stumpel C, Schrander J, Fryns JP, Hamers G. Trisomy 17p due to a t(8;17) (p23;p11.2)pat translocation. Case report and review of the literature. Clin Genet 1990; 37 (02) 148-152
  • 17 Liehr T. Small supernumerary marker chromosomes. 2016 http://ssmc-tl.com/chromosome-17.html. Accessed December 1, 2016
  • 18 Yuan B, Harel T, Gu S. , et al. Nonrecurrent 17p11.2p12 rearrangement events that result in two concomitant genomic disorders: the PMP22–RAI1 contiguous gene duplication syndrome. Am J Hum Genet 2015; 97 (05) 691-707
  • 19 Girirajan S, Williams S, Garbern J, Nowak N, Hatchwell E, Elsea S. 17p11.2p12 triplication and del(17)q11.2q12 in a severely affected child with dup(17)p11.2p12 syndrome. Clin Genet 2007; 72 (01) 47-58
  • 20 Liehr T, Heller A, Starke H. , et al. Microdissection based high resolution multicolor banding for all 24 human chromosomes. Int J Mol Med 2002; 9 (04) 335-339
  • 21 Libioulle C, Louis E, Hansoul S. , et al. Novel Crohn disease locus identified by genome-wide association maps to a gene desert on 5p13.1 and modulates expression of PTGER4. PLoS Genet 2007; 3 (04) e58 . Doi: 10.1371/journal.pgen.0030058
  • 22 Glas J, Seiderer J, Czamara D. , et al. PTGER4 expression-modulating polymorphisms in the 5p13.1 region predispose to Crohn's disease and affect NF-κB and XBP1 binding sites. PLoS One 2012; 7 (12) e52873 . Doi: 10.1371/journal.pone.0052873
  • 23 Potocki L, Bi W, Treadwell-Deering D. , et al. Characterization of Potocki-Lupski syndrome (dup(17)(p11.2p11.2)) and delineation of a dosage-sensitive critical interval that can convey an autism phenotype. Am J Hum Genet 2007; 80 (04) 633-649
  • 24 Magoulas PL, Liu P, Gelowani V. , et al. Inherited dup(17)(p11.2p11.2): expanding the phenotype of the Potocki-Lupski syndrome. Am J Med Genet A 2014; 164A (02) 500-504
  • 25 Kehrer M, Liehr T, Benkert T. , et al. Interstitial duplication of chromosome region 1q25.1q25.3: report of a patient with mild cognitive deficits, tall stature and facial dysmorphisms. Am J Med Genet A 2015; 167A (03) 653-656