Literature DB >> 11788718

Investigation of a conserved stacking interaction in target site recognition by the U1A protein.

Jerome C Shiels1, Jacob B Tuite, Scott J Nolan, Anne M Baranger.   

Abstract

Three highly conserved aromatic residues in RNA recognition motifs (RRM) participate in stacking interactions with RNA bases upon binding RNA. We have investigated the contribution of one of these aromatic residues, Phe56, to the complex formed between the N-terminal RRM of the spliceosomal protein U1A and stem-loop 2 of U1 snRNA. Previous work showed that the aromatic group is important for high affinity binding. Here we probe how mutation of Phe56 affects the kinetics of complex dissociation, the strength of the hydrogen bonds formed between U1A and the base that stacks with Phe56 (A6) and specific target site recognition. Substitution of Phe56 with Trp or Tyr increased the rate of dissociation of the complex, consistent with previously reported results. However, substitution of Phe56 with His decreased the rate of complex association, implying a change in the initial formation of the complex. Simultaneous modification of residue 56 and A6 revealed energetic coupling between the aromatic group and the functional groups of A6 that hydrogen bond to U1A. Finally, mutation of Phe56 to Leu reduced the ability of U1A to recognize stem-loop 2 correctly. Taken together, these experiments suggest that Phe56 contributes to binding affinity by stacking with A6 and participating in networks of energetically coupled interactions that enable this conserved aromatic amino acid to play a complex role in target site recognition.

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Year:  2002        PMID: 11788718      PMCID: PMC99821          DOI: 10.1093/nar/30.2.550

Source DB:  PubMed          Journal:  Nucleic Acids Res        ISSN: 0305-1048            Impact factor:   16.971


  62 in total

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9.  Identification of the RNA binding segment of human U1 A protein and definition of its binding site on U1 snRNA.

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  21 in total

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2.  A study of collective atomic fluctuations and cooperativity in the U1A-RNA complex based on molecular dynamics simulations.

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4.  Recognition of essential purines by the U1A protein.

Authors:  Yulia Benitex; Anne M Baranger
Journal:  BMC Biochem       Date:  2007-11-02       Impact factor: 4.059

5.  Affinity and specificity of protein U1A-RNA complex formation based on an additive component free energy model.

Authors:  Bethany L Kormos; Yulia Benitex; Anne M Baranger; David L Beveridge
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6.  Characterization of the dynamics of an essential helix in the U1A protein by time-resolved fluorescence measurements.

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7.  Prediction of salt and mutational effects on the association rate of U1A protein and U1 small nuclear RNA stem/loop II.

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9.  Intrinsic flexibility of snRNA hairpin loops facilitates protein binding.

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10.  Prediction of interacting single-stranded RNA bases by protein-binding patterns.

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