FOXP2: Difference between revisions

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&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;A very unique feature of the FOXP2-DNA structure is its ability to form a <scene name='FOXP2/Dimer_second/1'>domain swapped dimer</scene>. In the dimeric structure, two monomers exchange <scene name='FOXP2/Domain_swapped/1'>helix H3</scene>. The dimeric structure is stabilized by complex aromatic interactions involving <scene name='FOXP2/Aromatic/1'>aromatic residues</scene> 507, 509, 531, 534, 538, 540, 541, and 548. In typical FOX family proteins, dimerization is nearly impossible due to the presence of a proline at position 539, effectively preventing helix 2 and three from merging into a single long H3. In FOXP2, this proline is replaced with <scene name='FOXP2/Alanine/1'>an alanine</scene>, allowing the <scene name='FOXP2/Long_helices/1'>long helix</scene> to form. This feature is present in all FOXP proteins. Interestingly, the mutations Phe371Cys and Phe371Leu are known to cause FOXP dysfunction and speech issues, but <scene name='FOXP2/Buried_ph/1'>residue Phe 371 (Phe 538 here)</scene> is only involved in interactions in the FOXP2 dimeric form, highlighting the importance of the dimeric structure. The dimeric structure interacts with the DNA molecule to <scene name='FOXP2/Dimer_second_inter/2'>a far lesser extent</scene> than the monomeric form of FOXP2 however. A morph of the domain swapping can be <scene name='FOXP2/Domain_switching_morph/2'> seen here</scene>.<ref name="Chen"/>  
&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;A very unique feature of the FOXP2-DNA structure is its ability to form a <scene name='FOXP2/Dimer_second/1'>domain swapped dimer</scene>. In the dimeric structure, two monomers exchange <scene name='FOXP2/Domain_swapped/1'>helix H3</scene>. The dimeric structure is stabilized by complex aromatic interactions involving <scene name='FOXP2/Aromatic/1'>aromatic residues</scene> 507, 509, 531, 534, 538, 540, 541, and 548. In typical FOX family proteins, dimerization is nearly impossible due to the presence of a proline at position 539, effectively preventing helix 2 and three from merging into a single long H3. In FOXP2, this proline is replaced with <scene name='FOXP2/Alanine/1'>an alanine</scene>, allowing the <scene name='FOXP2/Long_helices/1'>long helix</scene> to form. This feature is present in all FOXP proteins. Interestingly, the mutations Phe371Cys and Phe371Leu are known to cause FOXP dysfunction and speech issues, but <scene name='FOXP2/Buried_ph/1'>residue Phe 371 (Phe 538 here)</scene> is only involved in interactions in the FOXP2 dimeric form, highlighting the importance of the dimeric structure. The dimeric structure interacts with the DNA molecule to <scene name='FOXP2/Dimer_second_inter/2'>a far lesser extent</scene> than the monomeric form of FOXP2 however. A morph of the domain swapping can be <scene name='FOXP2/Domain_switching_morph/2'> seen here</scene>.<ref name="Chen"/>  
</StructureSection>
</StructureSection>
====Page Development====
This article was developed based on lectures given in Chemistry 543 by Prof. Clarence E. Schutt at Princeton University.
==References==
==References==
<references/>
<references/>

Revision as of 15:51, 17 May 2011

Structure of FOXP2, 2a07

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Page Development

This article was developed based on lectures given in Chemistry 543 by Prof. Clarence E. Schutt at Princeton University.

References


See Also

Proteopedia Page Contributors and Editors (what is this?)

David Canner, Wayne Decatur, Alexander Berchansky, Michal Harel