Literature DB >> 1840650

Cloning and sequence analysis of TFE, a helix-loop-helix transcription factor able to recognize the thyroglobulin gene promoter in vitro.

F Javaux1, A Donda, G Vassart, D Christophe.   

Abstract

A cDNA that encodes a transcription factor able to recognize the thyroglobulin gene promoter in vitro was isolated from a dog thyroid cDNA expression library in lambda gt11. The library was screened with a multimerized 20 bp-oligonucleotide probe corresponding to the -126 to -107 bp region of the bovine thyroglobulin gene promoter. The specificity of DNA sequence recognition was demonstrated by DNA binding experiments realized with beta-galactosidase-fusion protein immobilized on nitrocellulose filters and various unlabelled multimerized competing DNA fragments. The encoded protein, TFE, appears to be the canine counterpart of a recently cloned human transcription factor, ITF-2, that binds to the mu E5 kappa E2 motif found in both immunoglobulin heavy and light chains genes enhancers and belongs to the basic-Helix-Loop-Helix family of transcription factors. When TFE protein was produced in a rabbit reticulocyte lysate, it displayed the same specificity of DNA sequence recognition as the beta-galactosidase fusion protein and immobilization of the translation product on nitrocellulose still appeared to be essential for detecting in vitro DNA binding activity. Functional data failed to assign a role for TFE in the control of thyroglobulin gene transcription in vitro, suggesting that the selection of TFE clone resulted from the fortuitous presence of a high affinity binding site in the probe used for screening the expression library.

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Year:  1991        PMID: 1840650      PMCID: PMC333790          DOI: 10.1093/nar/19.5.1121

Source DB:  PubMed          Journal:  Nucleic Acids Res        ISSN: 0305-1048            Impact factor:   16.971


  26 in total

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Authors:  H Singh; J H LeBowitz; A S Baldwin; P A Sharp
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8.  Amino acid sequences common to rapidly degraded proteins: the PEST hypothesis.

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Authors:  A J Van Herle; G Vassart; J E Dumont
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10.  Transcriptional control of thyroglobulin gene expression by cyclic AMP.

Authors:  B Van Heuverswyn; A Leriche; J Van Sande; J E Dumont; G Vassart
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  7 in total

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3.  Inhibition of thyrotropin-stimulated DNA synthesis by microinjection of inhibitors of cellular Ras and cyclic AMP-dependent protein kinase.

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4.  TFEC, a basic helix-loop-helix protein, forms heterodimers with TFE3 and inhibits TFE3-dependent transcription activation.

Authors:  G Q Zhao; Q Zhao; X Zhou; M G Mattei; B de Crombrugghe
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5.  Murine helix-loop-helix transcriptional activator proteins binding to the E-box motif of the Akv murine leukemia virus enhancer identified by cDNA cloning.

Authors:  A L Nielsen; N Pallisgaard; F S Pedersen; P Jørgensen
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Review 6.  Transcription factor 4 and its association with psychiatric disorders.

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7.  The DNA-binding protein E12 co-operates with XMyoD in the activation of muscle-specific gene expression in Xenopus embryos.

Authors:  J Rashbass; M V Taylor; J B Gurdon
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  7 in total

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