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      Molecular hierarchy in neurons differentiated from mouse ES cells containing a single human chromosome 21.

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          Abstract

          Defects in neurogenesis and neuronal differentiation in the fetal brain of Down syndrome (DS) patients lead to the apparent neuropathological abnormalities and contribute to the phenotypic characters of mental retardation, and premature development of Alzheimer's disease, those being the most common phenotype in DS. In order to understand the molecular mechanism underlying the cause of phenotypic abnormalities in the DS brain, we have utilized an in vitro model of TT2F mouse embryonic stem cells containing a single human chromosome 21 (hChr21) to study neuron development and neuronal differentiation by microarray containing 15K developmentally expressed cDNAs. Defective neuronal differentiation in the presence of extra hChr21 manifested primarily the post-transcriptional and translational modification, such as Mrpl10, SNAPC3, Srprb, SF3a60 in the early neuronal stem cell stage, and Mrps18a, Eef1g, and Ubce8 in the late differentiated stage. Hierarchical clustering patterned specific expression of hChr21 gene dosage effects on neuron outgrowth, migration, and differentiation, such as Syngr2, Dncic2, Eif3sf, and Peg3.

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          Author and article information

          Journal
          Biochem. Biophys. Res. Commun.
          Biochemical and biophysical research communications
          0006-291X
          0006-291X
          Feb 6 2004
          : 314
          : 2
          Affiliations
          [1 ] Department of Obstetrics and Gynaecology, The Chinese University of Hong Kong, Shatin, Hong Kong.
          Article
          S0006291X0302686X
          10.1016/j.bbrc.2003.12.091
          14733910
          74b38710-5557-4eee-a110-5b7a3933a7b6
          History

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