Calculate structure

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* In the SUMMARY for Domain 2 of Chain A Glycogen Phosphorylase there are six T labeled segments which contain one residue. Each of the three residue segments if viewed in isolation appear as if they are involved in 3-turns, but none of them have a hbond between ''i'' and ''i + 2''. These residues are colored to indicate they are involved in helices, a sheet and non-repetitive, ordered segment, but only one is colored blue.
* In the SUMMARY for Domain 2 of Chain A Glycogen Phosphorylase there are six T labeled segments which contain one residue. Each of the three residue segments if viewed in isolation appear as if they are involved in 3-turns, but none of them have a hbond between ''i'' and ''i + 2''. These residues are colored to indicate they are involved in helices, a sheet and non-repetitive, ordered segment, but only one is colored blue.
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* ''Calculate structure'' found a classic γ-turns in only one of the proteins in which Miner-White, et. al. had found eleven classic turns. Reasons for this are ''Calculate structure'' did not identify the hbond, there is a partial overlap with a helix which has priority over the turn.
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* ''Calculate structure'' found a classic γ-turns in only one of the proteins in which Miner-White, et. al. had found eleven classic turns. Reasons for this are ''Calculate structure'' did not identify the hbond, there is a partial overlap with a helix which has priority over the turn.
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=== Illustrations ===
=== Illustrations ===
The user is urged to use the above directions to open Jmol version 12 and to run the ''calculate structure'' and the accompanying commands so that the resulting display can be compared with the summary below. Without displaying the images generated by ''calculate structure'' and ''calculate hbonds structure'' the activities and comparisons described below can not be performed. Unless a green link is designed to change the color and structural representation these two display characteristics will not change after they have been set by ''calculate structure'', but all hbonds are deleted by clicking a green link so ''calculate hbonds structure'' has to be run from the console after every green link click in order to display hbonds.
The user is urged to use the above directions to open Jmol version 12 and to run the ''calculate structure'' and the accompanying commands so that the resulting display can be compared with the summary below. Without displaying the images generated by ''calculate structure'' and ''calculate hbonds structure'' the activities and comparisons described below can not be performed. Unless a green link is designed to change the color and structural representation these two display characteristics will not change after they have been set by ''calculate structure'', but all hbonds are deleted by clicking a green link so ''calculate hbonds structure'' has to be run from the console after every green link click in order to display hbonds.
'''Myohemerytherin''' (<scene name='Globular_Proteins/Anti_helix_erythrin2/1'>Restore initial scene</scene>)
'''Myohemerytherin''' (<scene name='Globular_Proteins/Anti_helix_erythrin2/1'>Restore initial scene</scene>)
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* There are two T segments that contain one residue. The first two residues of the β-turn marked by <scene name='Calculate_structure/Turn_84/2'>T : A:86_A:86</scene> (run ''calculate hbonds structure'' in the console to show the hbonds)are part of a helix and residue 87 is not part of any other structure. A situation described below is similar but both residues that are not part of another structure are included in the T segment. The first residue (# 110) of the turn marked by <scene name='Calculate_structure/Turn_110/2'>T : A:110_A:110</scene> is not involved in another structure, but the other three residue are involved in a helix which has priority over a turn. Both of these turns are class I β-turn.
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* There are two T segments that contain one residue (<scene name='Calculate_structure/Turn_84/2'>T : A:86_A:86</scene> and <scene name='Calculate_structure/Turn_110/2'>T : A:110_A:110</scene>), and both mark β-turns. Descriptions of both are included in the summary below.
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* There are two T segments that contain two residues. The first two residues of the β-turn marked by<scene name='Calculate_structure/Turn_63/3'>T : A:65_A:66</scene> are #'s 63 and 64, these two are part of a helix as well as the β-turn, and therefore only #'s 65 and 66 are part of the T segment. The middle two residues (68 and 69) of the β-turn marked by <scene name='Calculate_structure/Turn_67/6'>T : A:68_A:69</scene> are not part of a helix, but residue #70 is. Notice that part of residues 67 and 68 are colored white rather than blue. Both turns are class I.
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* There are two T segments that contain two residues (<scene name='Calculate_structure/Turn_63/3'>T : A:65_A:66</scene> and <scene name='Calculate_structure/Turn_67/6'>T : A:68_A:69</scene>), and both mark β-turns. Descriptions of both are included in the summary below.
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* The <scene name='Calculate_structure/Turn_114/2'>last T</scene> identifies a three residue segment, and ''Calculate hbonds structure'' shows hbonds between 114 and 117 (3-turn and type II β-turn) and between 114 and 118 (4-turn). A β-turn is nested in a 4-turn. Residue 114 is part of the 3<sub>10</sub>-helix, and part of residue 118 is colored white.
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* The <scene name='Calculate_structure/Turn_114/2'>last T</scene> is a three residue segment, and ''Calculate hbonds structure'' shows hbonds between 114 and 117 (β-turn) and between 114 and 118 (4-turn). A β-turn is nested in a 4-turn.
* Can you locate the two turns that are not coloredwith blue traces and not contain a hbond between the first and the last residues of the turn. Remember that you can confirm the presence of this type of β-turn by showing the presence of a Pro at position three. (Hover the cursor over the trace to display the name and number of the residues.) There are two class VIb β-turns in myohemerytherin.
* Can you locate the two turns that are not coloredwith blue traces and not contain a hbond between the first and the last residues of the turn. Remember that you can confirm the presence of this type of β-turn by showing the presence of a Pro at position three. (Hover the cursor over the trace to display the name and number of the residues.) There are two class VIb β-turns in myohemerytherin.
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G : A:12_A:14<br>
G : A:12_A:14<br>
H : A:19_A:37<br>
H : A:19_A:37<br>
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H : A:41_A:64<br>
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H : A:41_A:64 &nbsp;&nbsp;&nbsp;&nbsp;(run the command ''calculate hbonds structure'' in the console to see the hbonds)<br>
T : A:65_A:66 β-turn 63-66 - 63 & 64 part of a helix, 65 & 66 are blue. <scene name='Calculate_structure/Turn_63/3'>Display turn</scene><br>
T : A:65_A:66 β-turn 63-66 - 63 & 64 part of a helix, 65 & 66 are blue. <scene name='Calculate_structure/Turn_63/3'>Display turn</scene><br>
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T : A:68_A:69 β-turn 67-70 - 70 is part of a helix, 67 & 68 are white & blue, 69 entirely blue. <scene name='Calculate_structure/Turn_67/6'>Display turn</scene>; run the command ''calculate hbonds structure'' in the console to see the hbonds<br>
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T : A:68_A:69 β-turn 67-70 - 70 is part of a helix, 67 & 68 are white & blue, 69 entirely blue. <scene name='Calculate_structure/Turn_67/6'>Display turn</scene>; <br>
H : A:70_A:85<br>
H : A:70_A:85<br>
T : A:86_A:86 β-turn 84-87 - 84 & 85 are part of a helix, 86 is colored blue & 87 is white. <scene name='Calculate_structure/Turn_84/2'>Display turn</scene><br>
T : A:86_A:86 β-turn 84-87 - 84 & 85 are part of a helix, 86 is colored blue & 87 is white. <scene name='Calculate_structure/Turn_84/2'>Display turn</scene><br>
H : A:93_A:109<br>
H : A:93_A:109<br>
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T : A:110_A:110 β-turn 110-113 - 110 is blue, last three are part of a helix. <scene name='Calculate_structure/Turn_110/2'>Display turn</scene><br>
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T : A:110_A:110 β-turn 110-113 - 110 is blue, 111-113 are part of a helix. <scene name='Calculate_structure/Turn_110/2'>Display turn</scene><br>
G : A:111_A:114<br>
G : A:111_A:114<br>
T : A:115_A:117 β-turn 114-117, 4-turn 114-118 - 114 is part of a helix, 115-117 & part of 118 are blue, 118 is partially white. <scene name='Calculate_structure/Turn_114/2'>Display turn</scene><br>
T : A:115_A:117 β-turn 114-117, 4-turn 114-118 - 114 is part of a helix, 115-117 & part of 118 are blue, 118 is partially white. <scene name='Calculate_structure/Turn_114/2'>Display turn</scene><br>

Revision as of 18:48, 3 August 2011

An important part of protein structure is the secondary structure which is made up of helices, sheets and turns, and Jmol is capable of determining and displaying these three types of structures with limitations as described in How Jmol Determines Secondary Structure . The calculate structure[1] is a command which does a more fundamental identification of these secondary structures by re-calculating the secondary structure, but it is not available in Jmol 11.8 which is used in Proteopedia as of June 2011. It is available in Jmol ver. 12. Calculate hbonds structure is also available in ver. 12, and it identifies and displays the hbonds involved in these three types of secondary structures[1].

Any one page of Proteopedia can be run in the signed ver. 12 by appending "?JMOLJAR=http://chemapps.stolaf.edu/jmol/docs/examples-12/JmolAppletSigned0.jar" to the url of the page and reloading the page. The user must give permission for the signed version of Jmol to open, and when it does it has a red frank, whereas in the unsigned version it is grey. Click on the Jmol frank, in the main menu click on Console, in the bottom box of the console enter the commands:
select protein; calculate structure; cartoon; color structure; calculate hbonds structure
and then click Run.

The objectives of this article are:

  • Describe what structures are identified by calculate structure and briefly how it is done.
  • Summarize the results of using calculate structure to identify β in several proteins.
  • Show details of the above identifications.

PDB ID 2mhr.pdb

Drag the structure with the mouse to rotate


References

  1. 1.0 1.1 A detailed description is at [1].
  2. 2.0 2.1 W. Kabsch & C. Sanders, Biopolymers, 22, 2577-2636, 1983.
  3. Characteristics of β-turn classes
  4. 4.0 4.1 Miner-White, EJ, et. al. One type of gamma turn, rather than the other, gives rise to chain reversal in proteins. J. Mol. Bio. 204, 1983, pp. 777-782.

Proteopedia Page Contributors and Editors (what is this?)

Karl Oberholser, Jaime Prilusky, Wayne Decatur

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