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Genetic variation in MKL2 and decreased downstream PCTAIRE1 expression in extreme, fatal primary human microcephaly

The genetic mechanisms driving normal brain development remain largely unknown. We performed genomic and immunohistochemical characterization of a novel, fatal human phenotype including extreme microcephaly with cerebral growth arrest at 14–18 weeks gestation in three full sisters born to healthy, n...

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Autores principales: Ramos, EI, Bien-Willner, GA, Li, J, Hughes, AEO, Giacalone, J, Chasnoff, S, Kulkarni, S, Parmacek, M, Cole, FS, Druley, TE
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Blackwell Publishing Ltd 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3929543/
https://www.ncbi.nlm.nih.gov/pubmed/23692340
http://dx.doi.org/10.1111/cge.12197
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author Ramos, EI
Bien-Willner, GA
Li, J
Hughes, AEO
Giacalone, J
Chasnoff, S
Kulkarni, S
Parmacek, M
Cole, FS
Druley, TE
author_facet Ramos, EI
Bien-Willner, GA
Li, J
Hughes, AEO
Giacalone, J
Chasnoff, S
Kulkarni, S
Parmacek, M
Cole, FS
Druley, TE
author_sort Ramos, EI
collection PubMed
description The genetic mechanisms driving normal brain development remain largely unknown. We performed genomic and immunohistochemical characterization of a novel, fatal human phenotype including extreme microcephaly with cerebral growth arrest at 14–18 weeks gestation in three full sisters born to healthy, non-consanguineous parents. Analysis of index cases and parents included familial exome sequencing, karyotyping, and genome-wide single nucleotide polymorphism (SNP) array. From proband, control and unrelated microcephalic fetal cortical tissue, we compared gene expression of RNA and targeted immunohistochemistry. Each daughter was homozygous for a rare, non-synonymous, deleterious variant in the MKL2 gene and heterozygous for a private 185 kb deletion on the paternal allele, upstream and in cis with his MKL2 variant allele, eliminating 24 CArG transcription factor binding sites and MIR4718. MKL1 was underexpressed in probands. Dysfunction of MKL2 and its transcriptional coactivation partner, serum response factor (SRF), was supported by a decrease in gene and protein expression of PCTAIRE1, a downstream target of MKL2:SRF heterodimer transcriptional activation, previously shown to result in severe microcephaly in murine models. While disruption of the MKL2:SRF axis has been associated with severe microcephaly and disordered brain development in multiple model systems, the role of this transcription factor complex has not been previously demonstrated in human brain development.
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spelling pubmed-39295432014-05-01 Genetic variation in MKL2 and decreased downstream PCTAIRE1 expression in extreme, fatal primary human microcephaly Ramos, EI Bien-Willner, GA Li, J Hughes, AEO Giacalone, J Chasnoff, S Kulkarni, S Parmacek, M Cole, FS Druley, TE Clin Genet Original Articles The genetic mechanisms driving normal brain development remain largely unknown. We performed genomic and immunohistochemical characterization of a novel, fatal human phenotype including extreme microcephaly with cerebral growth arrest at 14–18 weeks gestation in three full sisters born to healthy, non-consanguineous parents. Analysis of index cases and parents included familial exome sequencing, karyotyping, and genome-wide single nucleotide polymorphism (SNP) array. From proband, control and unrelated microcephalic fetal cortical tissue, we compared gene expression of RNA and targeted immunohistochemistry. Each daughter was homozygous for a rare, non-synonymous, deleterious variant in the MKL2 gene and heterozygous for a private 185 kb deletion on the paternal allele, upstream and in cis with his MKL2 variant allele, eliminating 24 CArG transcription factor binding sites and MIR4718. MKL1 was underexpressed in probands. Dysfunction of MKL2 and its transcriptional coactivation partner, serum response factor (SRF), was supported by a decrease in gene and protein expression of PCTAIRE1, a downstream target of MKL2:SRF heterodimer transcriptional activation, previously shown to result in severe microcephaly in murine models. While disruption of the MKL2:SRF axis has been associated with severe microcephaly and disordered brain development in multiple model systems, the role of this transcription factor complex has not been previously demonstrated in human brain development. Blackwell Publishing Ltd 2014-05 2013-06-18 /pmc/articles/PMC3929543/ /pubmed/23692340 http://dx.doi.org/10.1111/cge.12197 Text en © 2013 The Authors. Clinical Genetics published by John Wiley & Sons A/S. Published by John Wiley & Sons Ltd. http://creativecommons.org/licenses/by/3.0/ This is an open access article under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Articles
Ramos, EI
Bien-Willner, GA
Li, J
Hughes, AEO
Giacalone, J
Chasnoff, S
Kulkarni, S
Parmacek, M
Cole, FS
Druley, TE
Genetic variation in MKL2 and decreased downstream PCTAIRE1 expression in extreme, fatal primary human microcephaly
title Genetic variation in MKL2 and decreased downstream PCTAIRE1 expression in extreme, fatal primary human microcephaly
title_full Genetic variation in MKL2 and decreased downstream PCTAIRE1 expression in extreme, fatal primary human microcephaly
title_fullStr Genetic variation in MKL2 and decreased downstream PCTAIRE1 expression in extreme, fatal primary human microcephaly
title_full_unstemmed Genetic variation in MKL2 and decreased downstream PCTAIRE1 expression in extreme, fatal primary human microcephaly
title_short Genetic variation in MKL2 and decreased downstream PCTAIRE1 expression in extreme, fatal primary human microcephaly
title_sort genetic variation in mkl2 and decreased downstream pctaire1 expression in extreme, fatal primary human microcephaly
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3929543/
https://www.ncbi.nlm.nih.gov/pubmed/23692340
http://dx.doi.org/10.1111/cge.12197
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