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The crystal structure of a heptameric archaeal Sm protein: Implications for the eukaryotic snRNP core.


ABSTRACT: Sm proteins form the core of small nuclear ribonucleoprotein particles (snRNPs), making them key components of several mRNA-processing assemblies, including the spliceosome. We report the 1.75-A crystal structure of SmAP, an Sm-like archaeal protein that forms a heptameric ring perforated by a cationic pore. In addition to providing direct evidence for such an assembly in eukaryotic snRNPs, this structure (i) shows that SmAP homodimers are structurally similar to human Sm heterodimers, (ii) supports a gene duplication model of Sm protein evolution, and (iii) offers a model of SmAP bound to single-stranded RNA (ssRNA) that explains Sm binding-site specificity. The pronounced electrostatic asymmetry of the SmAP surface imparts directionality to putative SmAP-RNA interactions.

SUBMITTER: Mura C 

PROVIDER: S-EPMC33247 | biostudies-literature | 2001 May

REPOSITORIES: biostudies-literature

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The crystal structure of a heptameric archaeal Sm protein: Implications for the eukaryotic snRNP core.

Mura C C   Cascio D D   Sawaya M R MR   Eisenberg D S DS  

Proceedings of the National Academy of Sciences of the United States of America 20010501 10


Sm proteins form the core of small nuclear ribonucleoprotein particles (snRNPs), making them key components of several mRNA-processing assemblies, including the spliceosome. We report the 1.75-A crystal structure of SmAP, an Sm-like archaeal protein that forms a heptameric ring perforated by a cationic pore. In addition to providing direct evidence for such an assembly in eukaryotic snRNPs, this structure (i) shows that SmAP homodimers are structurally similar to human Sm heterodimers, (ii) supp  ...[more]

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