Literature DB >> 12471051

Transcriptome analysis of human autosomal trisomy.

David R FitzPatrick1, Jacqueline Ramsay, Niolette I McGill, Mary Shade, Andrew D Carothers, Nicholas D Hastie.   

Abstract

We present transcriptome analyses of primary cultures of human fetal cells from pregnancies affected with trisomy 21 (t21) and trisomy 13 (t13). Pooled mRNA samples from t21 and t13 cases were used for comparative hybridizations to cDNA arrays with pooled mRNA from normal cells. When the array cDNAs were grouped by chromosomal location the relevant trisomic chromosome could be clearly identified as showing the most significant misregulation. The average level of transcription on the trisomic chromosome was increased only approximately 1.1-fold compared to normal cells on array analysis. Since the karyotype could be accurately predicted by the transcriptome this could provide a novel method of detecting aneusomy of unknown position. Subsequent analysis of individuals cases demonstrated that variation in transcriptional profiles between samples within each class made transcriptional karyotyping difficult without pooling or the use of arrays with a higher proportion of all human cDNAs. Interestingly, consistent differences in the relative expression levels between chromosomes were detected suggesting that genomic control mechanisms may act over larger distances than previously thought. Most (>95%) >+/-2 SD misregulated genes did not map to the trisomic chromosome and significant misregulation was more common in t13 than t21. These data support a model of a subtle primary upregulation of genes on the trisomic chromosome resulting in a secondary, generalized and more extreme transcriptional misregulation. It seems likely that the degree of this misregulation determines the severity of the phenotype in most aneuploidy.

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Year:  2002        PMID: 12471051     DOI: 10.1093/hmg/11.26.3249

Source DB:  PubMed          Journal:  Hum Mol Genet        ISSN: 0964-6906            Impact factor:   6.150


  70 in total

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5.  Genotype-phenotype correlations in Down syndrome identified by array CGH in 30 cases of partial trisomy and partial monosomy chromosome 21.

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6.  Gene expression analysis of the function of the male-specific lethal complex in Drosophila.

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7.  Gene expression variation increase in trisomy 21 tissues.

Authors:  Ching Yu Chou; Li Yu Liu; Chien Yu Chen; Cheng Hsien Tsai; Hsiao Lin Hwa; Li Yun Chang; Yi Shing Lin; Fon Jou Hsieh
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8.  Segmental trisomy of chromosome 17: a mouse model of human aneuploidy syndromes.

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9.  Buffering of segmental and chromosomal aneuploidies in Drosophila melanogaster.

Authors:  Per Stenberg; Lina E Lundberg; Anna-Mia Johansson; Patrik Rydén; Malin J Svensson; Jan Larsson
Journal:  PLoS Genet       Date:  2009-05-01       Impact factor: 5.917

10.  A new mouse model for the trisomy of the Abcg1-U2af1 region reveals the complexity of the combinatorial genetic code of down syndrome.

Authors:  Patricia Lopes Pereira; Laetitia Magnol; Ignasi Sahún; Véronique Brault; Arnaud Duchon; Paola Prandini; Agnès Gruart; Jean-Charles Bizot; Bernadette Chadefaux-Vekemans; Samuel Deutsch; Fabrice Trovero; José María Delgado-García; Stylianos E Antonarakis; Mara Dierssen; Yann Herault
Journal:  Hum Mol Genet       Date:  2009-09-26       Impact factor: 6.150

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