Sandbox Reserved 967: Difference between revisions
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=== Several interactions between the subunits === | === Several interactions between the subunits === | ||
H2C protein is found in the middle of the elongated complex structure, flanked by H2A and H2B proteins on the ends. | H2C protein is found in the middle of the elongated complex structure, flanked by H2A and H2B proteins on the ends. | ||
The complex is stabilized by the intimately interwoven architecture of H2B and H2C: The N-terminal region of H2B protein (amino acids 1-92) weaves together with H2C domain to form 3 β-barrels, called <scene name='60/604486/Triple_barrel/2'>“triple barrel”</scene><ref name ="ref9"> Nicholson, Allen W. Ribonucleases. Springer Science & Business Media, 2011.</ref>. This triple barrel is formed from a total of <scene name='60/604486/Triple_barrel/1'>18 β-sheets</scene> and produces a pseudo-2-fold axis of symmetry along the central barrel. Also, it permits to leave the mostly α-helical C-terminal region of H2B available for potential interactions with other protein (for example the PCNA protein). Finally, it has been found that the motif provides a platform for securely binding the H2A protein: the side and end of the first barrel in the subcomplex H2B/H2C form a <scene name='60/604486/Tight_interface_h2ah2c/2'>tight interface</scene> with amino acids 197-258 in the C-terminal region of H2A protein. This interface is mainly composed of hydrophobic residues | The complex is stabilized by the intimately interwoven architecture of H2B and H2C: The N-terminal region of H2B protein (amino acids 1-92) weaves together with H2C domain to form 3 β-barrels, called <scene name='60/604486/Triple_barrel/2'>“triple barrel”</scene><ref name ="ref9"> Nicholson, Allen W. Ribonucleases. Springer Science & Business Media, 2011.</ref>. This triple barrel is formed from a total of <scene name='60/604486/Triple_barrel/1'>18 β-sheets</scene> and produces a pseudo-2-fold axis of symmetry along the central barrel. Also, it permits to leave the mostly α-helical C-terminal region of H2B available for potential interactions with other protein (for example the PCNA protein). Finally, it has been found that the motif provides a platform for securely binding the H2A protein: the side and end of the first barrel in the subcomplex H2B/H2C form a <scene name='60/604486/Tight_interface_h2ah2c/2'>tight interface </scene> with amino acids 197-258 in the C-terminal region of H2A protein. This interface is mainly composed of hydrophobic residues | ||
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It has been proved that the position of RNA/DNA complex in the active site cleft is determined by several favorable electrostatic interactions between the nucleic acid and positively charged amino acids of the protein<ref name = "ref2" />. | It has been proved that the position of RNA/DNA complex in the active site cleft is determined by several favorable electrostatic interactions between the nucleic acid and positively charged amino acids of the protein<ref name = "ref2" />. | ||
The β6-α6 loop of the H2A protein could play a role in substrate recognition: the minor groove of the double helix molecule straddles this area of the protein, which results in a non-sequence specific cleavage by the enzyme. Moreover, the β6-α6 loop contains a<scene name='60/604486/Site_actif_dna_recongnition/1'>Lysine amino acid in position 128</scene>, which might act as a sensor for the hybrid by forming an interaction with the 2’-hydroxyl group of the ribose in the 3’ nucleotide of the RNA primer in the RNA-DNA hybrid ('''Figure 2'''). Therefore, since DNA does not contain a 2’-hydroxyl group in it nucleotide sequence, the RNase H2 can only recognize RNA in the hybrid: only ribonucleotides of the RNA strand are positioned in the active site. The RNA-DNA hybrid is placed such that the target phosphodiester bond between the RNA and DNA parts of the hybrid is in the proper orientation for nucleophile attack by a two-metal ion mechanism. | The β6-α6 loop of the H2A protein could play a role in substrate recognition: the minor groove of the double helix molecule straddles this area of the protein, which results in a non-sequence specific cleavage by the enzyme. Moreover, the β6-α6 loop contains a <scene name='60/604486/Site_actif_dna_recongnition/1'>Lysine amino acid in position 128</scene>, which might act as a sensor for the hybrid by forming an interaction with the 2’-hydroxyl group of the ribose in the 3’ nucleotide of the RNA primer in the RNA-DNA hybrid .Another Lysine might be involved in the recognition of nucleic acids, indeed <scene name='60/604486/Site_actif_dna_recongnition/1'>Lysine 184</scene> might be able to recognize the 2'-hydroxyl groupe of the ribose of the amino acid at 5'end of the RNA ('''Figure 2'''). Therefore, since DNA does not contain a 2’-hydroxyl group in it nucleotide sequence, the RNase H2 can only recognize RNA in the hybrid: only ribonucleotides of the RNA strand are positioned in the active site. The RNA-DNA hybrid is placed such that the target phosphodiester bond between the RNA and DNA parts of the hybrid is in the proper orientation for nucleophile attack by a two-metal ion mechanism. | ||
It is important to notice that the Mammalian RNase H2 contains only one cleft with the active site for substrate binding: RNase H2 may recognize single ribonucleotide within a DNA duplex that have a B-form helical structure, as well as longer RNA in RNA-DNA hybrid which adopts intermediate A/B form structure. Thus, the RNase H2 enzyme needs to bind both conformations to able to fully complete all its roles. | It is important to notice that the Mammalian RNase H2 contains only one cleft with the active site for substrate binding: RNase H2 may recognize single ribonucleotide within a DNA duplex that have a B-form helical structure, as well as longer RNA in RNA-DNA hybrid which adopts intermediate A/B form structure. Thus, the RNase H2 enzyme needs to bind both conformations to able to fully complete all its roles. | ||
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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++. The metal MA++ interacts with both the nonbridging and 3' bridging oxygen (figure ###) 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. ['''Rajouter figure'''] | ||
* '''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''' : 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. | ||
</StructureSection> | </StructureSection> | ||
Revision as of 09:46, 10 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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References
Proteopedia page contributors and editors
Anaïs Bourbigot & Valériane Keïta

