Study of 30 patients with unexplained developmental delay and dysmorphic features or congenital abnormalities using conventional cytogenetics and multiplex FISH telomere (M-TEL) integrity assay

被引:22
作者
Popp, S
Schulze, B
Granzow, M
Keller, M
Holtgreve-Grez, H
Schoell, B
Brough, M
Hager, HD
Tariverdian, G
Brown, J
Kearney, L
Jauch, A
机构
[1] Inst Human Genet, D-69120 Heidelberg, Germany
[2] Deutsch Krebsforschungszentrum, Div Genet Skin Carcinogenesis, D-6900 Heidelberg, Germany
[3] Univ Heidelberg, Dept Orthodont, Heidelberg, Germany
[4] MRC, Inst Mol Med, Mol Haematol Unit, Oxford, England
[5] Inst Canc Res, Leukaemia Res Fund Ctr, London SW3 6JB, England
关键词
D O I
10.1007/s00439-002-0739-x
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
Cryptic subtelomeric chromosome rearrangements are a major cause of mild to severe mental retardation pointing out the necessity of sensitive screening techniques to detect such aberrations among affected patients. In this prospective study a group of 30 patients with unexplained developmental retardation and dysmorphic features or congenital abnormalities were analysed using the recently published multiplex FISH telomere (M-TEL) integrity assay in combination with conventional G-banding analysis. The patients were selected by one or more of the following criteria defined by de Vries et al.: (a) family history with two or more affected individuals, (b) prenatal onset growth retardation, (c) postnatal growth abnormalities, (d) facial dysmorphic features, (e) non-facial dysmorphism and congenital abnormalities. In addition, we included two patients who met these criteria and revealed questionable chromosome regions requiring further clarification. In four patients (13.3%) cryptic chromosome aberrations were successfully determined by the M-TEL integrity assay and in two patients with abnormal chromosome regions intrachromosomal aberrations were characterized by targetted FISH experiments. Our results accentuate the requirement of strict selection criteria prior to patient testing with the M-TEL integrity assay. Another essential precondition is high-quality banding analysis to identify structural abnormal chromosomes. The detection of familial balanced translocation carriers in 50% of the cases emphasizes the significance of such an integrated approach for genetic counselling and prenatal diagnosis.
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页码:31 / 39
页数:9
相关论文
共 56 条
[1]   BACking up the promises [J].
Antonarakis, SE .
NATURE GENETICS, 2001, 27 (03) :230-+
[2]  
Bhatia SN, 1999, PRENATAL DIAG, V19, P863
[3]   DELETION OF THE TSC2 AND PKD1 GENES ASSOCIATED WITH SEVERE INFANTILE POLYCYSTIC KIDNEY-DISEASE - A CONTIGUOUS GENE SYNDROME [J].
BROOKCARTER, PT ;
PERAL, B ;
WARD, CJ ;
THOMPSON, P ;
HUGHES, J ;
MAHESHWAR, MM ;
NELLIST, M ;
GAMBLE, V ;
HARRIS, PC ;
SAMPSON, JR .
NATURE GENETICS, 1994, 8 (04) :328-332
[4]   Identification of a subtle t(16;19)(p13.3;p13.3) in an infant with multiple congenital abnormalities using a 12-colour multiplex FISH telomere assay, M-TEL [J].
Brown, J ;
Horsley, SW ;
Jung, C ;
Saracoglu, K ;
Janssen, B ;
Brough, M ;
Daschner, M ;
Beedgen, B ;
Kerkhoffs, G ;
Eils, R ;
Harris, PC ;
Jauch, A ;
Kearney, L .
EUROPEAN JOURNAL OF HUMAN GENETICS, 2000, 8 (12) :903-910
[5]   Subtelomeric chromosome rearrangements are detected using an innovative 12-color FISH assay (M-TEL) [J].
Brown, J ;
Saracoglu, K ;
Uhrig, S ;
Speicher, MR ;
Eils, R ;
Kearney, L .
NATURE MEDICINE, 2001, 7 (04) :497-501
[6]  
COMFORTH MN, 2001, MUTAGENESIS, V16, P85
[7]   THE DISTRIBUTION OF CPG ISLANDS IN MAMMALIAN CHROMOSOMES [J].
CRAIG, JM ;
BICKMORE, WA .
NATURE GENETICS, 1994, 7 (03) :376-382
[8]   Submicroscopic 8pter deletion, mild mental retardation, and behavioral problems caused by a familial t(8;20)(p23;p13) [J].
de Vries, BBA ;
Lees, M ;
Knight, SJL ;
Regan, R ;
Corney, D ;
Flint, J ;
Barnicoat, A ;
Winter, RM .
AMERICAN JOURNAL OF MEDICAL GENETICS, 2001, 99 (04) :314-319
[9]   Clinical studies on submicroscopic subtelomeric rearrangements: a checklist [J].
de Vries, BBA ;
White, SM ;
Knight, SJL ;
Regan, R ;
Homfray, T ;
Young, ID ;
Super, M ;
McKeown, C ;
Splitt, M ;
Quarrell, OWJ ;
Trainer, AH ;
Niermeijer, MF ;
Malcolm, S ;
Flint, J ;
Hurst, JA ;
Winter, RM .
JOURNAL OF MEDICAL GENETICS, 2001, 38 (03) :145-150
[10]   A physical map of 30,000 human genes [J].
Deloukas, P ;
Schuler, GD ;
Gyapay, G ;
Beasley, EM ;
Soderlund, C ;
Rodriguez-Tomé, P ;
Hui, L ;
Matise, TC ;
McKusick, KB ;
Beckmann, JS ;
Bentolila, S ;
Bihoreau, MT ;
Birren, BB ;
Browne, J ;
Butler, A ;
Castle, AB ;
Chiannilkulchai, N ;
Clee, C ;
Day, PJR ;
Dehejia, A ;
Dibling, T ;
Drouot, N ;
Duprat, S ;
Fizames, C ;
Fox, S ;
Gelling, S ;
Green, L ;
Harrison, P ;
Hocking, R ;
Holloway, E ;
Hunt, S ;
Keil, S ;
Lijnzaad, P ;
Louis-Dit-Sully, C ;
Ma, J ;
Mendis, A ;
Miller, J ;
Morissette, J ;
Muselet, D ;
Nusbaum, HC ;
Peck, A ;
Rozen, S ;
Simon, D ;
Slonim, DK ;
Staples, R ;
Stein, LD ;
Stewart, EA ;
Suchard, MA ;
Thangarajah, T ;
Vega-Czarny, N .
SCIENCE, 1998, 282 (5389) :744-746