Sandbox Reserved 967: Difference between revisions

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The RNase H2 recognize 2’OH group of ribonucleotides in RNA at RNA/DNA junction and cannot cleave unhybridized RNA. The phosphodiester hydrolysis catalysed by the RNase H2 is likely following a two-metal ion-dependent mechanism quite common for phosphoryl hydrolases like RNase H enzymes.
The RNase H2 recognize 2’OH group of ribonucleotides in RNA at RNA/DNA junction and cannot cleave unhybridized RNA. The phosphodiester hydrolysis catalysed by the RNase H2 is likely following a two-metal ion-dependent mechanism quite common for phosphoryl hydrolases like RNase H enzymes.


The active site of the catalytic H2A protein is located in a cleft near one end of the complex and formed by strands β2 and 5, and helices α4 and α5. The active site contains four catalytic amino acids strictly conserved in RNases H2: Asp34, Glu35, Asp142 and Asp170. These amino acids are essential for the coordination of the 2 divalent metal ions implicated in the stabilisation of reaction intermediates and transition states. In vitro, these ions can be Mg++, Mn++ or Zn++ but the native enzyme is likely to contain Mg++.  
The active site of the catalytic H2A protein is located in a cleft near one end of the complex and formed by strands β2 and 5, and helices α4 and α5. The active site contains four catalytic amino acids strictly conserved in RNases H2: <scene name='60/604486/Site_actif/1'>Asp34, Glu35, Asp142 and Asp170/scene>. These amino acids are essential for the coordination of the 2 divalent metal ions implicated in the stabilisation of reaction intermediates and transition states. In vitro, these ions can be Mg++, Mn++ or Zn++ but the native enzyme is likely to contain Mg++.  


'''[Figure 2 à incorporer]'''
'''[Figure 2 à incorporer]'''


The hydrolysis can be decomposed in 3 steps:
The hydrolysis can be decomposed in 3('''?''') steps:
* '''1''' : Deprotonation of a water molecule coordinated to the metal MB++ to form a nucleophile OH- ion. This hydroxide ion will then be properly oriented for an in-line nucleophilic attack of the target phosphate. The deprotonation mechanism has not been elucidated yet but two hypothesis can explain this step. According the first one, the metal MB++ might be responsible for the generation of water nucleophile. The other one involve a participation of the pro-R oxygen of the phosphate immediately to the 3’ side of the scissile bond, which is likely to serve as a general base for deprotonation (with transfer of the H+  to the solvent).This pro-R oxygen is also thought to play a role in the proper orientation of the hydroxide ion.
* '''1''' : Deprotonation of a water molecule coordinated to the metal MB++ to form a nucleophile OH- ion. This hydroxide ion will then be properly oriented for an in-line nucleophilic attack of the target phosphate. The deprotonation mechanism has not been elucidated yet but two hypothesis can explain this step. According the first one, the metal MB++ might be responsible for the generation of water nucleophile. The other one involve a participation of the pro-R oxygen of the phosphate immediately to the 3’ side of the scissile bond, which is likely to serve as a general base for deprotonation (with transfer of the H+  to the solvent).This pro-R oxygen is also thought to play a role in the proper orientation of the hydroxide ion.
* '''2''' : In line attack by hydroxide ion of the target phosphate. During this step, a pentacovalent phosphate (transition state) is formed and stabilized by metal MA++. The metal MA++ interacts with both the nonbridging and 3' bridging oxygen ('''Figure 2''') and the strain induced by this double briding is thought to accelerate the hydrolysis rate.  This step release a 3’ oxyanion stabilized by metal MA++ acting as a Lewis acid.
* '''2''' : In line attack by hydroxide ion of the target phosphate. During this step, a pentacovalent phosphate (transition state) is formed and stabilized by metal MA++ by interacting with both the nonbridging and 3' bridging oxygen. ['''Je dois rajouter ce qu'il y a dans le tableau ?''']
* '''3''' : The cleaved phosphate cannot simultaneously coordinate the two metal ions anymore, and likely one of the metal ions leave the active site which triggers a release of cleave product.
* '''3''' : 3) The cleaved phosphate cannot simultaneously coordinate the two metal ions anymore, and likely one of the metal ions leave the active site which triggers a release of cleave product.
 
 
This is a sample scene created with SAT to <scene name="/12/3456/Sample/1">color</scene> by Group, and another to make <scene name="/12/3456/Sample/2">a transparent representation</scene> of the protein. You can make your own scenes on SAT starting from scratch or loading and editing one of these sample scenes.
This is a sample scene created with SAT to <scene name="/12/3456/Sample/1">color</scene> by Group, and another to make <scene name="/12/3456/Sample/2">a transparent representation</scene> of the protein. You can make your own scenes on SAT starting from scratch or loading and editing one of these sample scenes.



Revision as of 15:35, 8 January 2015

This Sandbox is Reserved from 15/11/2014, through 15/05/2015 for use in the course "Biomolecule" taught by Bruno Kieffer at the Strasbourg University. This reservation includes Sandbox Reserved 951 through Sandbox Reserved 975.
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Structure of the Mouse RNase H2 Complex

mouse RNase H2 complex, (PDB code 3kio)

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References