Sandbox Reserved 829: Difference between revisions

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The homeodomain protein folds into three <scene name='56/568027/Helices/1'>three α-helices</scene> ([http://en.wikipedia.org/wiki/Alpha_helix Wikipédia]), with helices 1 and 2 antiparallel to each other and perpendicular to helix 3, and a flexible <scene name='56/568027/Nterminal/1'>N-terminal arm</scene>.  
The homeodomain protein folds into three <scene name='56/568027/Helices/1'>three α-helices</scene> ([http://en.wikipedia.org/wiki/Alpha_helix Wikipédia]), with helices 1 and 2 antiparallel to each other and perpendicular to helix 3, and a flexible <scene name='56/568027/Nterminal/1'>N-terminal arm</scene>.  


Helices 2 and 3 form a helix-turn-helix type motif([http://proteopedia.org/wiki/index.php/Helix-turn-helix_motif  Protéopédia], [http://en.wikipedia.org/wiki/Helix-turn-helix Wikipedia]).
Helices 2 and 3 form a helix-turn-helix type motif ([http://proteopedia.org/wiki/index.php/Helix-turn-helix_motif  Protéopédia], [http://en.wikipedia.org/wiki/Helix-turn-helix Wikipedia]).
Indeed this tertiary structure motif consists of two α-helices and a short extended amino acids chain between them. The more carboxyl-terminal helix can fit into the major groove of DNA.   
Indeed this tertiary structure motif consists of two α-helices and a short extended amino acids chain between them. The more carboxyl-terminal helix can fit into the major groove of DNA.   
That is why, helix 3 (also known as the recognition helix) interacts with the the major groove of the DNA.  
That is why, helix 3 (also known as the recognition helix) interacts with the the major groove of the DNA.