User:Karsten Theis/turns

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<StructureSection load='' size='350' side='right' caption='' scene='10/1072233/Turn_2mhr/2'>
<StructureSection load='' size='350' side='right' caption='' scene='10/1072233/Turn_2mhr/2'>
The repetitive secondary structure elements (alpha helices and beta strands) go in a single direction. Turns change the direction of the main chain, allowing them to connect alpha helices and beta strands at the surface of a globular protein. Of the six main chain hydrogen bonding partners of a turn, a maximum of two are engaged in hydrogen bonding, and turns are rarely found in the hydrophobic core. Below are three different protein folds highlighting the position of turns.
The repetitive secondary structure elements (alpha helices and beta strands) go in a single direction. Turns change the direction of the main chain, allowing them to connect alpha helices and beta strands at the surface of a globular protein. Of the six main chain hydrogen bonding partners of a turn, a maximum of two are engaged in hydrogen bonding, and turns are rarely found in the hydrophobic core. Below are three different protein folds highlighting the position of turns.
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===Turns in an all-alpha protein===
===Turns in an all-alpha protein===

Revision as of 21:23, 11 February 2025

A beta turn is a secondary structure element consisting of four consecutive amino acids (or three consecutive peptide planes). The geometry of turns correspond to a change in the direction of the polypeptide backbone, with a short distance between the first and fourth alpha carbon.

Turns in 3D

Drag the structure with the mouse to rotate

References

  1. de Brevern AG. A Perspective on the (Rise and Fall of) Protein β-Turns. Int J Mol Sci. 2022 Oct 14;23(20):12314. PMID:36293166 doi:10.3390/ijms232012314
  2. Wilmot CM, Thornton JM. Analysis and prediction of the different types of beta-turn in proteins. J Mol Biol. 1988 Sep 5;203(1):221-32. PMID:3184187 doi:10.1016/0022-2836(88)90103-9

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Karsten Theis

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