Alpha helix: Difference between revisions

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   <text>side chains</text>
   <text>side chains</text>
</jmolLink></jmol> pointing away from the helical axis. (Stereo: <jmol><jmolLink>
</jmolLink></jmol> pointing away from the helical axis. (Stereo: <jmol><jmolLink>
<script>  stereo 5
<script>  stereo -5
   </script>
   </script>
   <text>ON</text>
   <text>ON</text>
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</jmol>) at the position of a <scene name='77/778341/Proline/5'>proline</scene>.
</jmol>) at the position of a <scene name='77/778341/Proline/5'>proline</scene>.


Prolines are often found near the beginning or end of an alpha helix, as in this example of <scene name='77/778341/Proline_cap/1'>the helix in crambin</scene> (this is an ultra high resolution structure where hydrogen atoms - white - are resolved and some atoms are shown in multiple positions). At the <scene name='77/778341/Proline_cap_detail/2'>C-terminal end</scene> of the helix, there is a proline that interrupts the regular pattern of n to n+4 hydrogen bonds.  Instead, the helix ends with an n to n+3 hydrogen bond (one turn of a so-called 3-10 helix, see [[Helices in Proteins]]). The subsequent proline is in the center of a turn, followed by a glycine (which is part of an n to n+3 hydrogen bond also typical for turns).
Prolines are often found near the beginning or end of an alpha helix, as in this example of <scene name='77/778341/Proline_cap/1'>the helix in crambin</scene> (this is an ultra high resolution structure where hydrogen atoms - white - are resolved and some atoms are shown in multiple positions). At the <scene name='77/778341/Proline_cap_detail/5'>C-terminal end</scene> of the helix, there is a proline that interrupts the regular pattern of n to n+4 hydrogen bonds.  Instead, the helix ends with an n to n+3 hydrogen bond (one turn of a so-called 3-10 helix, see [[Helices in Proteins]]). The subsequent proline is in the center of a turn, followed by a glycine (which is part of an n to n+3 hydrogen bond also typical for turns).
   
   
The beginnings and ends of helices are called N-caps and C-caps, respectively, and they have interesting [https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2143812/ sequence and structural patterns] involving main chain or side chain hydrogen bonding.
The beginnings and ends of helices are called N-caps and C-caps, respectively, and they have interesting [https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2143812/ sequence and structural patterns] involving main chain or side chain hydrogen bonding.
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==Types of proteins and folds that contain alpha helices==
==Types of proteins and folds that contain alpha helices==
===Alpha helices in soluble (globular) proteins===
===Alpha helices in soluble (globular) proteins===
The first two protein structure to be determined, [[myoglobin]] and [[hemoglobin]], consists mainly of alpha helices. Researchers were surprised to see how random the orientation of helices seemed to be. Other all alpha-helical proteins show bundles of nearly parallel (or antiparallel) helices (e.g. bacterial cytochrome c' [[1e83]]). In structures that have beta sheets and alpha helices, one common fold is a single beta sheet that is sandwiched by layers of alpha helices on either side (for example [[Carboxypeptidase A]]). When an alpha helix runs along the surface of the protein, one side of it will show polar side chains (solvent accessible) while the other side will show non-polar side chains (part of the hydrophobic core). The alpha helix fits nicely into the major groove of DNA. Many common DNA-binding motifs, such as the helix-turn-helix (e.g. [[FIS protein]]) or the zinc finger motif (e.g. engineered zinc finger protein [[2i13]]), feature a short alpha helix that binds to the major groove of DNA.
The first two protein structures to be determined, [[myoglobin]] and [[hemoglobin]], consist mainly of alpha helices. Researchers were surprised to see how random the orientation of helices seemed to be. Other all alpha-helical proteins show bundles of nearly parallel (or antiparallel) helices (e.g. bacterial cytochrome c' [[1e83]]). In structures that have beta sheets and alpha helices, one common fold is a single beta sheet that is sandwiched by layers of alpha helices on either side (for example [[Carboxypeptidase A]]). When an alpha helix runs along the surface of the protein, one side of it will show polar side chains (solvent accessible) while the other side will show non-polar side chains (part of the hydrophobic core). The alpha helix fits nicely into the major groove of DNA. Many common DNA-binding motifs, such as the helix-turn-helix (e.g. [[FIS protein]]) or the zinc finger motif (e.g. engineered zinc finger protein [[2i13]]), feature a short alpha helix that binds to the major groove of DNA.


===Alpha helices in transmembrane proteins===
===Alpha helices in transmembrane proteins===
A common fold found in transmembrane proteins are alpha-helical bundles running from one side to the other side of the membrane. An alpha helix of 19 amino acids (with a length of about 30 angstroms) has the right size to cross the double-layer of a typical membrane. If the helix runs at an angle instead of perfectly perpendicular to the membrane, it has to be a bit longer. There is a write-up on opioid receptiors that illustrates this fold in the Molecule of the Month series by David Goodsell (http://pdb101.rcsb.org/motm/217).
A common fold found in transmembrane proteins are alpha-helical bundles running from one side to the other side of the membrane. An alpha helix of 19 amino acids (with a length of about 30 angstroms) has the right size to cross the double-layer of a typical membrane. If the helix runs at an angle instead of perfectly perpendicular to the membrane, it has to be a bit longer. There is a write-up on opioid receptors that illustrates this fold in the Molecule of the Month series by David Goodsell (http://pdb101.rcsb.org/motm/217).


===Alpha helices in coiled coils===
===Alpha helices in coiled coils===
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* [[Secondary structure]]
* [[Secondary structure]]
* [[Protein primary, secondary, tertiary and quaternary structure]] / [[Protein primary, secondary, tertiary and quaternary structure (Spanish)|Estructuras primaria, secundaria, terciaria y cuaternaria de las proteínas]]
* [[Protein primary, secondary, tertiary and quaternary structure]] / [[Protein primary, secondary, tertiary and quaternary structure (Spanish)|Estructuras primaria, secundaria, terciaria y cuaternaria de las proteínas]]
* [[Introduction to molecular visualization]]


== References ==
== References ==
<references/>
<references/>
[[Category:Pages with quizzes]]
[[Category:Pages with quizzes]]