Search for cis-acting factors and maternal effect variants in Silver-Russell patients with ICR1 hypomethylation and their mothers
暂无分享,去创建一个
T. Eggermann | I. Kurth | M. Elbracht | M. Begemann | F. Kraft | L. Soellner | S. Sauer | Lukas Soellner
[1] R. Siebert,et al. Maternal variants in NLRP and other maternal effect proteins are associated with multilocus imprinting disturbance in offspring , 2018, Journal of Medical Genetics.
[2] K. Zerres,et al. NLRP genes and their role in preeclampsia and multi-locus imprinting disorders , 2018, Journal of perinatal medicine.
[3] A. Riccio,et al. Is ZFP57 binding to H19/IGF2:IG-DMR affected in Silver-Russell syndrome? , 2018, Clinical Epigenetics.
[4] D. Monk,et al. NLRPs, the subcortical maternal complex and genomic imprinting. , 2017, Reproduction.
[5] T. Eggermann,et al. Maternal heterozygous NLRP7 variant results in recurrent reproductive failure and imprinting disturbances in the offspring , 2017, European Journal of Human Genetics.
[6] I. B. Van den Veyver,et al. Maternally expressed NLRP2 links the subcortical maternal complex (SCMC) to fertility, embryogenesis and epigenetic reprogramming , 2017, Scientific Reports.
[7] M. Maghnie,et al. Diagnosis and management of Silver–Russell syndrome: first international consensus statement , 2017, Nature Reviews Endocrinology.
[8] S. Chantot-Bastaraud,et al. 11p15 ICR1 Partial Deletions Associated with IGF2/H19 DMR Hypomethylation and Silver–Russell Syndrome , 2017, Human mutation.
[9] S. Berger,et al. Humanized H19/Igf2 locus reveals diverged imprinting mechanism between mouse and human and reflects Silver–Russell syndrome phenotypes , 2016, Proceedings of the National Academy of Sciences.
[10] R. Weksberg,et al. EMQN best practice guidelines for the molecular genetic testing and reporting of chromosome 11p15 imprinting disorders: Silver–Russell and Beckwith–Wiedemann syndrome , 2016, European Journal of Human Genetics.
[11] M. Esteller,et al. Absence of Maternal Methylation in Biparental Hydatidiform Moles from Women with NLRP7 Maternal-Effect Mutations Reveals Widespread Placenta-Specific Imprinting , 2015, PLoS genetics.
[12] T. Eggermann,et al. Mutations in NLRP5 are associated with reproductive wastage and multilocus imprinting disorders in humans , 2015, Nature Communications.
[13] C. Elsik,et al. Characterization of global loss of imprinting in fetal overgrowth syndrome induced by assisted reproduction , 2015, Proceedings of the National Academy of Sciences.
[14] T. Eggermann,et al. Multilocus methylation defects in imprinting disorders , 2015, Biomolecular concepts.
[15] Y. Le Bouc,et al. Exhaustive methylation analysis revealed uneven profiles of methylation at IGF2/ICR1/H19 11p15 loci in Russell Silver syndrome , 2014, Journal of Medical Genetics.
[16] L. Pasquier,et al. Extensive investigation of the IGF2/H19 imprinting control region reveals novel OCT4/SOX2 binding site defects associated with specific methylation patterns in Beckwith-Wiedemann syndrome. , 2014, Human molecular genetics.
[17] I. Netchine,et al. Complex Tissue‐Specific Epigenotypes in Russell–Silver Syndrome Associated with 11p15 ICR1 Hypomethylation , 2014, Human mutation.
[18] S. Bens,et al. Additional molecular findings in 11p15-associated imprinting disorders: an urgent need for multi-locus testing , 2014, Journal of Molecular Medicine.
[19] I. Netchine,et al. Beckwith–Wiedemann and Russell–Silver Syndromes: from new molecular insights to the comprehension of imprinting regulation , 2014, Current opinion in endocrinology, diabetes, and obesity.
[20] O. Bruland,et al. Evidence for anticipation in Beckwith–Wiedemann syndrome , 2013, European Journal of Human Genetics.
[21] Thomas Eggermann,et al. Clinical significance of copy number variations in the 11p15.5 imprinting control regions: new cases and review of the literature , 2012, Journal of Medical Genetics.
[22] K. Zerres,et al. Use of multilocus methylation-specific single nucleotide primer extension (MS-SNuPE) technology in diagnostic testing for human imprinted loci , 2012, Epigenetics.
[23] Y. Yamazaki,et al. Primary epimutations introduced during intracytoplasmic sperm injection (ICSI) are corrected by germline-specific epigenetic reprogramming , 2012, Proceedings of the National Academy of Sciences.
[24] Z. Tümer,et al. No evidence for pathogenic variants or maternal effect of ZFP57 as the cause of Beckwith–Wiedemann Syndrome , 2011, European Journal of Human Genetics.
[25] L. Faivre,et al. New insights into the pathogenesis of beckwith–wiedemann and silver–russell syndromes: Contribution of small copy number variations to 11p15 imprinting defects , 2011, Human mutation.
[26] T. Eggermann,et al. Screening for genomic variants in ZFP57 in Silver-Russell syndrome patients with 11p15 epimutations. , 2009, European journal of medical genetics.
[27] W. Reik,et al. Germline Mutation in NLRP2 (NALP2) in a Familial Imprinting Disorder (Beckwith-Wiedemann Syndrome) , 2009, PLoS genetics.
[28] P. Leder,et al. A maternal-zygotic effect gene, Zfp57, maintains both maternal and paternal imprints. , 2008, Developmental cell.
[29] A. Hattersley,et al. Hypomethylation of multiple imprinted loci in individuals with transient neonatal diabetes is associated with mutations in ZFP57 , 2008, Nature Genetics.
[30] Ana M. Rojas,et al. The Nod-Like Receptor (NLR) Family: A Tale of Similarities and Differences , 2008, PloS one.
[31] B. Hamel,et al. Hypomethylation of the H19 gene causes not only Silver-Russell syndrome (SRS) but also isolated asymmetry or an SRS-like phenotype. , 2006, American journal of human genetics.
[32] Seang Tan,et al. Congenital abnormalities in children born after assisted reproductive techniques: how much is associated with the presence of infertility and how much with its treatment? , 2005, Fertility and sterility.
[33] C. Gicquel,et al. Epimutation of the telomeric imprinting center region on chromosome 11p15 in Silver-Russell syndrome , 2005, Nature Genetics.