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==Structure==
==Structure==
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MyoD has a basic region at its amino-terminal end, which functions in binding the transcription factor to a region of the DNA known as the E-box. At the carboxyl-terminal end is MyoD's <scene name='71/714943/Hlh/2'>HLH domain</scene>. The HLH domain functions in <scene name='71/714943/Hlh_interaction_segment/3'>protein-protein interactions</scene> and forms homodimeric and heterodimeric complexes through a combination of hydrophobic interactions and hydrogen bonding (hydrophobic residues in gray, hydrogen bonding in purple) <ref>DOI: 10.1186/gb-2004-5-6-226</ref>.MyoD also contains an acidic activation domain. The activity of this activation domain has been observed to increase drastically upon deletion of residues in other parts of the protein. This suggests that the acidic activation domain is buried within the protein in vivo and can be activated by subtle changes in structure <ref>Weintraub, H., Dwarki, V. J., Verma, I., Davis, R., Hollenberg, S., Snider, L., Lassar, A., Tapscott, S. J. Muscle-specific transcriptional activation
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MyoD has a basic region at its amino-terminal end, which functions in binding the transcription factor to a region of the DNA known as the E-box. At the carboxyl-terminal end is MyoD's <scene name='71/714943/Hlh/2'>HLH domain</scene>. The HLH domain functions in <scene name='71/714943/Hlh_interaction_segment/4'>protein-protein interactions</scene> and forms homodimeric and heterodimeric complexes through a combination of hydrophobic interactions and hydrogen bonding (hydrophobic residues in gray, hydrogen bonding in purple) <ref>DOI: 10.1186/gb-2004-5-6-226</ref>.MyoD also contains an acidic activation domain. The activity of this activation domain has been observed to increase drastically upon deletion of residues in other parts of the protein. This suggests that the acidic activation domain is buried within the protein in vivo and can be activated by subtle changes in structure <ref>Weintraub, H., Dwarki, V. J., Verma, I., Davis, R., Hollenberg, S., Snider, L., Lassar, A., Tapscott, S. J. Muscle-specific transcriptional activation
by MyoD. Genes & Dev. '''1991'''. 5. 1377-1386 </ref>.
by MyoD. Genes & Dev. '''1991'''. 5. 1377-1386 </ref>.

Revision as of 21:47, 28 October 2015

MyoD

Crystal Structure of MyoD Homodimer bHLH Domain

Drag the structure with the mouse to rotate

References

  1. Phospho Site Plus. http://www.phosphosite.org/proteinAction.do?id=3637&showAllSites=true (accessed October 6, 2015)
  2. Jones S. An overview of the basic helix-loop-helix proteins. Genome Biol. 2004;5(6):226. Epub 2004 May 28. PMID:15186484 doi:http://dx.doi.org/10.1186/gb-2004-5-6-226
  3. Weintraub, H., Dwarki, V. J., Verma, I., Davis, R., Hollenberg, S., Snider, L., Lassar, A., Tapscott, S. J. Muscle-specific transcriptional activation by MyoD. Genes & Dev. 1991. 5. 1377-1386
  4. Kophengnavong, T., Michnowicz, J. E., & Blackwell, T. K. Establishment of Distinct MyoD, E2A, and Twist DNA Binding Specificities by Different Basic Region-DNA Conformations. Molecular and Cellular Biology, 2000, 20. 261–272.
  5. Jones S. An overview of the basic helix-loop-helix proteins. Genome Biol. 2004;5(6):226. Epub 2004 May 28. PMID:15186484 doi:http://dx.doi.org/10.1186/gb-2004-5-6-226
  6. Weintraub, H., Dwarki, V. J., Verma, I., Davis, R., Hollenberg, S., Snider, L., Lassar, A., Tapscott, S. J. Muscle-specific transcriptional activation by MyoD. Genes & Dev. 1991. 5. 1377-1386
  7. Yang Z, MacQuarrie KL, Analau E, Tyler AE, Dilworth FJ, Cao Y, Diede SJ, Tapscott SJ. MyoD and E-protein heterodimers switch rhabdomyosarcoma cells from an arrested myoblast phase to a differentiated state. Genes Dev. 2009 Mar 15;23(6):694-707. doi: 10.1101/gad.1765109. PMID:19299559 doi:http://dx.doi.org/10.1101/gad.1765109
  8. Hamamori, Y., Wu, H. Y., Sartorelli, V., & Kedes, L. The basic domain of myogenic basic helix-loop-helix (bHLH) proteins is the novel target for direct inhibition by another bHLH protein, Twist. Molecular and Cellular Biology. 1997. 17. 6563–6573.
  9. Micheli L, Leonardi L, Conti F, Maresca G, Colazingari S, Mattei E, Lira SA, Farioli-Vecchioli S, Caruso M, Tirone F. PC4/Tis7/IFRD1 stimulates skeletal muscle regeneration and is involved in myoblast differentiation as a regulator of MyoD and NF-kappaB. J Biol Chem. 2011 Feb 18;286(7):5691-707. doi: 10.1074/jbc.M110.162842. Epub 2010, Dec 2. PMID:21127072 doi:http://dx.doi.org/10.1074/jbc.M110.162842
  10. Sartorelli V, Huang J, Hamamori Y, Kedes L. Molecular mechanisms of myogenic coactivation by p300: direct interaction with the activation domain of MyoD and with the MADS box of MEF2C. Mol Cell Biol. 1997 Feb;17(2):1010-26. PMID:9001254
  11. Breitschopf K, Bengal E, Ziv T, Admon A, Ciechanover A. A novel site for ubiquitination: the N-terminal residue, and not internal lysines of MyoD, is essential for conjugation and degradation of the protein. EMBO J. 1998 Oct 15;17(20):5964-73. PMID:9774340 doi:http://dx.doi.org/10.1093/emboj/17.20.5964
  12. Song, A., Wang, Q., Goebl, M. G., & Harrington, M. A. (1998). Phosphorylation of Nuclear MyoD Is Required for Its Rapid Degradation. Molecular and Cellular Biology. 1998. 18. 4994–4999
  13. Arnold, H. H.; Braun, T. Targeted inactivation of myogenic factor genes reveals their role during mouse myogenesis: a review. Int. J. Dev. Biol. 1996. 40. 345-353

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