The Basic Domain of Myogenic Basic Helix-Loop-Helix (bHLH) Proteins Is the Novel Target for Direct Inhibition by Another bHLH Protein, Twist
The Basic Domain of Myogenic Basic Helix-Loop-Helix (bHLH) Proteins Is the Novel Target for Direct Inhibition by Another bHLH Protein, Twist
In vertebrates, the basic helix-loop-helix (bHLH) protein Twist may be involved in the negative regulation of cellular determination and in the differentiation of several lineages, including myogenesis, osteogenesis, and neurogenesis. Although it has been shown that mouse twist (M-Twist) (i) sequesters E proteins, thus preventing formation of myogenic E protein-MyoD complexes and (ii) inhibits the MEF2 transcription factor, a cofactor of myogenic bHLH proteins, overexpression of E proteins and MEF2 failed to rescue the inhibitory effects of M-Twist on MyoD. We report here that M-Twist physically interacts with the myogenic bHLH proteins in vitro and in vivo and that this interaction is required for the inhibition of MyoD by M-Twist. In contrast to the conventional HLH-HLH domain interaction formed in the MyoD/E12 heterodimer, this novel type of interaction uses the basic domains of the two proteins. While the MyoD HLH domain without the basic domain failed to interact with M-Twist, a MyoD peptide containing only the basic and helix 1 regions was sufficient to interact with M-Twist, suggesting that the basic domain contacts M-Twist. The replacement of three arginine residues by alanines in the M-Twist basic domain was sufficient to abolish both the binding and inhibition of MyoD by M-Twist, while the domain retained other M-Twist functions such as heterodimerization with an E protein and inhibition of MEF2 transactivation. These findings demonstrate that M-Twist interacts with MyoD through the basic domains, thereby inhibiting MyoD.
- University of Southern California United States
- University of Brescia Italy
- University of California System United States
Transcriptional Activation, Binding Sites, MEF2 Transcription Factors, DNA Mutational Analysis, Helix-Loop-Helix Motifs, Molecular Sequence Data, Twist-Related Protein 1, Nuclear Proteins, Cell Differentiation, Arginine, DNA-Binding Proteins, Mice, Myogenic Regulatory Factors, Basic Helix-Loop-Helix Transcription Factors, Animals, Amino Acid Sequence, Conserved Sequence, MyoD Protein, Protein Binding, Transcription Factors
Transcriptional Activation, Binding Sites, MEF2 Transcription Factors, DNA Mutational Analysis, Helix-Loop-Helix Motifs, Molecular Sequence Data, Twist-Related Protein 1, Nuclear Proteins, Cell Differentiation, Arginine, DNA-Binding Proteins, Mice, Myogenic Regulatory Factors, Basic Helix-Loop-Helix Transcription Factors, Animals, Amino Acid Sequence, Conserved Sequence, MyoD Protein, Protein Binding, Transcription Factors
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