1i39: Difference between revisions

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New page: left|200px<br /><applet load="1i39" size="450" color="white" frame="true" align="right" spinBox="true" caption="1i39, resolution 1.95Å" /> '''RNASE HII FROM ARCHA...
 
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[[Image:1i39.jpg|left|200px]]<br /><applet load="1i39" size="450" color="white" frame="true" align="right" spinBox="true"  
[[Image:1i39.jpg|left|200px]]<br /><applet load="1i39" size="350" color="white" frame="true" align="right" spinBox="true"  
caption="1i39, resolution 1.95&Aring;" />
caption="1i39, resolution 1.95&Aring;" />
'''RNASE HII FROM ARCHAEOGLOBUS FULGIDUS'''<br />
'''RNASE HII FROM ARCHAEOGLOBUS FULGIDUS'''<br />


==Overview==
==Overview==
DNA replication and cellular survival requires efficient removal of RNA, primers during lagging strand DNA synthesis. In eukaryotes, RNA primer, removal is initiated by type 2 RNase H, which specifically cleaves the RNA, portion of an RNA-DNA/DNA hybrid duplex. This conserved type 2 RNase H, family of replicative enzymes shares little sequence similarity with the, well-characterized prokaryotic type 1 RNase H enzymes, yet both possess, similar enzymatic properties. Crystal structures and structure-based, mutational analysis of RNase HII from Archaeoglobus fulgidus, both with, and without a bound metal ion, identify the active site for type 2 RNase H, enzymes that provides the general nuclease activity necessary for, catalysis. The two-domain architecture of type 2 RNase H creates a, positively charged binding groove and links the unique C-terminal, helix-loop-helix cap domain to the active site catalytic domain. This, architectural arrangement apparently couples directional A-form duplex, binding, by a hydrogen-bonding Arg-Lys phosphate ruler motif, to, substrate-discrimination, by a tyrosine finger motif, thereby providing, substrate-specific catalytic activity. Combined kinetic and mutational, analyses of structurally implicated substrate binding residues validate, this binding mode. These structural and mutational results together, suggest a molecular mechanism for type 2 RNase H enzymes for the specific, recognition and cleavage of RNA in the RNA-DNA junction within hybrid, duplexes, which reconciles the broad substrate binding affinity with the, catalytic specificity observed in biochemical assays. In combination with, a recent independent structural analysis, these results furthermore, identify testable molecular hypotheses for the activity and function of, the type 2 RNase H family of enzymes, including structural, complementarity, substrate-mediated conformational changes and, coordination with subsequent FEN-1 activity.
DNA replication and cellular survival requires efficient removal of RNA primers during lagging strand DNA synthesis. In eukaryotes, RNA primer removal is initiated by type 2 RNase H, which specifically cleaves the RNA portion of an RNA-DNA/DNA hybrid duplex. This conserved type 2 RNase H family of replicative enzymes shares little sequence similarity with the well-characterized prokaryotic type 1 RNase H enzymes, yet both possess similar enzymatic properties. Crystal structures and structure-based mutational analysis of RNase HII from Archaeoglobus fulgidus, both with and without a bound metal ion, identify the active site for type 2 RNase H enzymes that provides the general nuclease activity necessary for catalysis. The two-domain architecture of type 2 RNase H creates a positively charged binding groove and links the unique C-terminal helix-loop-helix cap domain to the active site catalytic domain. This architectural arrangement apparently couples directional A-form duplex binding, by a hydrogen-bonding Arg-Lys phosphate ruler motif, to substrate-discrimination, by a tyrosine finger motif, thereby providing substrate-specific catalytic activity. Combined kinetic and mutational analyses of structurally implicated substrate binding residues validate this binding mode. These structural and mutational results together suggest a molecular mechanism for type 2 RNase H enzymes for the specific recognition and cleavage of RNA in the RNA-DNA junction within hybrid duplexes, which reconciles the broad substrate binding affinity with the catalytic specificity observed in biochemical assays. In combination with a recent independent structural analysis, these results furthermore identify testable molecular hypotheses for the activity and function of the type 2 RNase H family of enzymes, including structural complementarity, substrate-mediated conformational changes and coordination with subsequent FEN-1 activity.


==About this Structure==
==About this Structure==
1I39 is a [http://en.wikipedia.org/wiki/Single_protein Single protein] structure of sequence from [http://en.wikipedia.org/wiki/Archaeoglobus_fulgidus Archaeoglobus fulgidus]. Active as [http://en.wikipedia.org/wiki/Ribonuclease_H Ribonuclease H], with EC number [http://www.brenda-enzymes.info/php/result_flat.php4?ecno=3.1.26.4 3.1.26.4] Full crystallographic information is available from [http://ispc.weizmann.ac.il/oca-bin/ocashort?id=1I39 OCA].  
1I39 is a [http://en.wikipedia.org/wiki/Single_protein Single protein] structure of sequence from [http://en.wikipedia.org/wiki/Archaeoglobus_fulgidus Archaeoglobus fulgidus]. Active as [http://en.wikipedia.org/wiki/Ribonuclease_H Ribonuclease H], with EC number [http://www.brenda-enzymes.info/php/result_flat.php4?ecno=3.1.26.4 3.1.26.4] Full crystallographic information is available from [http://oca.weizmann.ac.il/oca-bin/ocashort?id=1I39 OCA].  


==Reference==
==Reference==
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[[Category: Single protein]]
[[Category: Single protein]]
[[Category: Chai, Q.]]
[[Category: Chai, Q.]]
[[Category: Chapados, B.R.]]
[[Category: Chapados, B R.]]
[[Category: Hosfield, D.J.]]
[[Category: Hosfield, D J.]]
[[Category: Qiu, J.]]
[[Category: Qiu, J.]]
[[Category: Shen, B.]]
[[Category: Shen, B.]]
[[Category: Tainer, J.A.]]
[[Category: Tainer, J A.]]
[[Category: helix-loop-helix]]
[[Category: helix-loop-helix]]
[[Category: mixed beta sheet]]
[[Category: mixed beta sheet]]


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