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++ | * '''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
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