The epigenetic imprinting defect of patients with Beckwith-Wiedemann syndrome born after assisted reproductive technology is not restricted to the 11p15 region

被引:167
|
作者
Rossignol, S.
Steunou, V.
Chalas, C.
Kerjean, A.
Rigolet, M.
Viegas-Pequignot, E.
Jouannet, P.
Le Bouc, Y.
Gicquel, C.
机构
[1] Hop Trousseau, Lab Explorat Fonctionnelles Endocriniennes, Hop Paris, F-75012 Paris, France
[2] Univ Paris 05, Reprod Biol Lab, Hop Paris, Hop Cochin, F-75674 Paris, France
[3] Univ Paris 07, INSERM, U741, Inst Jacques Monod, Paris, France
关键词
D O I
10.1136/jmg.2006.042135
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
Background: Genomic imprinting refers to an epigenetic marking resulting in monoallelic gene expression and has a critical role in fetal development. Various imprinting diseases have recently been reported in humans and animals born after the use of assisted reproductive technology (ART). All the epimutations implicated involve a loss of methylation of the maternal allele ( demethylation of KvDMR1/KCNQ1OT1 in Beckwith-Wiedemann syndrome (BWS), demethylation of SNRPN in Angelman syndrome and demethylation of DMR2/IGF2R in large offspring syndrome), suggesting that ART impairs the acquisition or maintenance of methylation marks on maternal imprinted genes. However, it is unknown whether this epigenetic imprinting error is random or restricted to a specific imprinted domain. Aim: To analyse the methylation status of various imprinted genes (IGF2R gene at 6q26, PEG1/MEST at 7q32, KCNQ1OT1 and H19 at 11p15.5, and SNRPN at 15q11-13) in 40 patients with BWS showing a loss of methylation at KCNQ1OT1 (11 patients with BWS born after the use of ART and 29 patients with BWS conceived naturally). Results: 3 of the 11 (27%) patients conceived using ART and 7 of the 29 (24%) patients conceived normally displayed an abnormal methylation at a locus other than KCNQ1OT1. Conclusions: Some patients with BWS show abnormal methylation at loci other than the 11p15 region, and the involvement of other loci is not restricted to patients with BWS born after ART was used. Moreover, the mosaic distribution of epimutations suggests that imprinting is lost after fertilisation owing to a failure to maintain methylation marks during pre-implantation development.
引用
收藏
页码:902 / 907
页数:6
相关论文
共 50 条
  • [31] High frequency of copy number variations (CNVs) in the chromosome 11p15 region in patients with Beckwith–Wiedemann syndrome
    Berivan Baskin
    Sanaa Choufani
    Yi-an Chen
    Cheryl Shuman
    Nicole Parkinson
    Emmanuelle Lemyre
    A. Micheil Innes
    Dimitri J. Stavropoulos
    Peter N. Ray
    Rosanna Weksberg
    Human Genetics, 2014, 133 : 321 - 330
  • [32] Epigenetic analysis of Beckwith-Wiedemann syndrome: evidence for two chromosome 11p5.5 imprinting control regions
    Maher, E
    Smallwood, AV
    Engel, J
    Joyce, JA
    Lam, W
    Reik, W
    Schofield, PN
    Higgins, MJ
    JOURNAL OF MEDICAL GENETICS, 1999, 36 : S18 - S18
  • [33] An 11p15 Imprinting Centre Region 2 Deletion in a Family with Beckwith Wiedemann Syndrome Provides Insights into Imprinting Control at CDKN1C
    Algar, Elizabeth
    Dagar, Vinod
    Sebaj, Menka
    Pachter, Nicholas
    PLOS ONE, 2011, 6 (12):
  • [34] 11p15 duplication and 13q34 deletion with Beckwith-Wiedemann syndrome and factor VII deficiency
    Jurkiewicz, Dorota
    Kugaudo, Monika
    Tanska, Anna
    Wawrzkiewicz-Witkowska, Angelika
    Tomaszewska, Agnieszka
    Kucharczyk, Marzena
    Cieslikowska, Agata
    Ciara, Elzbieta
    Krajewska-Walasek, Malgorzata
    PEDIATRICS INTERNATIONAL, 2015, 57 (03) : 486 - 491
  • [35] Child with Beckwith-Wiedemann syndrome born after assisted reproductive techniques to an human immunodeficiency virus serodiscordant couple
    Kuentz, Paul
    Bailly, Alphee
    Faure, Anne-Claire
    Blagosklonov, Oxana
    Amiot, Clotilde
    Bresson, Jean-Luc
    Roux, Christophe
    FERTILITY AND STERILITY, 2011, 96 (01) : E35 - E38
  • [36] EMQN best practice guidelines for the molecular genetic testing and reporting of chromosome 11p15 imprinting disorders: Silver-Russell and Beckwith-Wiedemann syndrome
    Eggermann, Katja
    Bliek, Jet
    Brioude, Frederic
    Algar, Elizabeth
    Buiting, Karin
    Russo, Silvia
    Tumer, Zeynep
    Monk, David
    Moore, Gudrun
    Antoniadi, Thalia
    Macdonald, Fiona
    Netchine, Irene
    Lombardi, Paolo
    Soellner, Lukas
    Begemann, Matthias
    Prawitt, Dirk
    Maher, Eamonn R.
    Mannens, Marcel
    Riccio, Andrea
    Weksberg, Rosanna
    Lapunzina, Pablo
    Gronskov, Karen
    Mackay, Deborah J. G.
    Eggermann, Thomas
    EUROPEAN JOURNAL OF HUMAN GENETICS, 2016, 24 (10) : 1377 - 1387
  • [37] Epigenetic Abnormalities of 11p15.5 Region in Beckwith-Wiedemann Syndrome - A Report of Eight Indian Cases
    Alec Reginald Errol Correa
    Puneeta Mishra
    Madhulika Kabra
    Neerja Gupta
    The Indian Journal of Pediatrics, 2020, 87 : 175 - 178
  • [38] Epigenetic mutations in 11p15 in Silver-Russell syndrome are restricted to the telomeric imprinting domain
    Eggermann, T
    Schönherr, N
    Meyer, E
    Obermann, C
    Mavany, M
    Eggermann, K
    Ranke, MB
    Wollmann, HA
    JOURNAL OF MEDICAL GENETICS, 2006, 43 (07) : 615 - 616
  • [39] A putative imprinting control region in 11p15.5 and its loss of methylation in Beckwith-Wiedemann syndrome.
    Day, CD
    Smilinich, NJ
    Fitzpatrick, GV
    Diaz-Meyer, N
    Titus, RL
    Caldwell, GM
    Lossie, AC
    Smallwood, AC
    Joyce, JA
    Schofield, PN
    Reik, W
    Nicholls, RD
    Weksberg, R
    Driscoll, DJ
    Mayer, ER
    Cooper, PR
    Shows, TB
    Higgins, MJ
    AMERICAN JOURNAL OF HUMAN GENETICS, 1999, 65 (04) : A104 - A104
  • [40] Severe presentation of Beckwith-Wiedemann syndrome associated with high levels of constitutional paternal uniparental disomy for chromosome 11p15
    Smith, Adam C.
    Shuman, Cheryl
    Chitayat, David
    Steele, Leslie
    Ray, Peter N.
    Bourgeois, Jaqueline
    Weksberg, Rosanna
    AMERICAN JOURNAL OF MEDICAL GENETICS PART A, 2007, 143A (24) : 3010 - 3015