Lsm: Difference between revisions

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The <scene name='Sandbox_502/Splsm4/2'>Lsm4 crystal structure</scene> contains a trimer of the Lsm4 monomers.  It contains the Sm motif consisting of an α-helix (distorted) and a β-sheet formed by five antiparallel stands (residues 14-70)<ref name ="wu"/>.
The <scene name='Sandbox_502/Splsm4/2'>Lsm4 crystal structure</scene> contains a trimer of the Lsm4 monomers.  It contains the Sm motif consisting of an α-helix (distorted) and a β-sheet formed by five antiparallel stands (residues 14-70)<ref name ="wu"/>.




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==Lsm 5/6/7==
==Lsm 5/6/7==
 
<scene name='Sandbox_502/Splsm657m/1'>Lsm 5/6/7</scene>  
<Structure load='3swn' size='250' frame='true' align='right' caption='Figure 6: Asymmetric unit of Lsm657-657 from Schizosaccharomyces pombe ' scene='Sandbox_502/Splsm657m/1'/>


A 2.5Å resolution structure of Lsm5, Lsm6 and Lsm7 has been determined where the crystal contains two hexameric Lsm657-657 rings.  <scene name='Sandbox_502/Splsm657m5/1'>Lsm5</scene> is located between <scene name='Sandbox_502/Splsm657m6/2'>Lsm6</scene> and <scene name='Sandbox_502/Splsm657m7/1'>Lsm7</scene> which analogous to their Sm counters parts.  In the hexameric ring each subunit interacts in the same manner as the other Lsm proteins (ie through the β4 stand of one subunit to the β5 strand of the other) to form a continuous β-sheet through the whole ring.  Each of the Lsm proteins exhibits the Sm motif with very small differences seen between them <ref name ="mund">PMID:22001694</ref>.  
A 2.5Å resolution structure of Lsm5, Lsm6 and Lsm7 has been determined where the crystal contains two hexameric Lsm657-657 rings.  <scene name='Sandbox_502/Splsm657m5/1'>Lsm5</scene> is located between <scene name='Sandbox_502/Splsm657m6/2'>Lsm6</scene> and <scene name='Sandbox_502/Splsm657m7/1'>Lsm7</scene> which analogous to their Sm counters parts.  In the hexameric ring each subunit interacts in the same manner as the other Lsm proteins (ie through the β4 stand of one subunit to the β5 strand of the other) to form a continuous β-sheet through the whole ring.  Each of the Lsm proteins exhibits the Sm motif with very small differences seen between them <ref name ="mund">PMID:22001694</ref>.  
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With respect to the role of Lsm proteins binding to RNA substrates, the pore of the Lsm657-657 ring is positively charged, which would confer to interactions with negatively charged RNA.  The Sm ring of Archaeoglobus fulgidus in complex with polyU RNA shows that each of the Sm proteins interacts with one base of RNA through residues in loops 3 and 5, and that the RNA is passed through the pore.  Due to the fact that the residues between the Sm and Lsm proteins are fairly conserved it is possible that the Lsm proteins act through a similar mechanism.  Two main differences can be seen however. There should be a canonical arginine or lysine in loop five of Lsm5 that forms a hydrogen bond to a base in the RNA, yet there is an asparagine present.  In addition, a canonical aromatic residue that provides stacking interactions with an RNA base should be found in loop three of Lsm7, however there is a leucine present instead.  While these differences prevent one from applying the RNA-protein interactions of Sm proteins to Lsm proteins, future studies may elucidate the exact mechanism <ref name ="mund">PMID:22001694</ref>.   
With respect to the role of Lsm proteins binding to RNA substrates, the pore of the Lsm657-657 ring is positively charged, which would confer to interactions with negatively charged RNA.  The Sm ring of Archaeoglobus fulgidus in complex with polyU RNA shows that each of the Sm proteins interacts with one base of RNA through residues in loops 3 and 5, and that the RNA is passed through the pore.  Due to the fact that the residues between the Sm and Lsm proteins are fairly conserved it is possible that the Lsm proteins act through a similar mechanism.  Two main differences can be seen however. There should be a canonical arginine or lysine in loop five of Lsm5 that forms a hydrogen bond to a base in the RNA, yet there is an asparagine present.  In addition, a canonical aromatic residue that provides stacking interactions with an RNA base should be found in loop three of Lsm7, however there is a leucine present instead.  While these differences prevent one from applying the RNA-protein interactions of Sm proteins to Lsm proteins, future studies may elucidate the exact mechanism <ref name ="mund">PMID:22001694</ref>.   


</StructureSection>
=Additional Resources=
=Additional Resources=



Revision as of 10:44, 11 March 2013

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Additional Resources

References

Proteopedia Page Contributors and Editors (what is this?)

Kelly Hrywkiw, Michal Harel, Alexander Berchansky