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Straightening of Bulged RNA by the Double-stranded RNA-binding Domain from the Protein Kinase PKR

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Specialty Science
Date 2000 Dec 13
PMID 11114159
Citations 20
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Abstract

The human interferon-induced protein kinase, PKR, is an antiviral agent that is activated by long stretches of double-stranded (ds)RNA. PKR has an N-terminal dsRNA-binding domain that contains two tandem copies of the dsRNA-binding motif and interacts with dsRNA in a nonsequence-specific fashion. Surprisingly, PKR can be regulated by certain viral and cellular RNAs containing non-Watson-Crick features. We found that RNAs containing bulges in the middle of a helix can bind to p20, a C-terminal truncated PKR containing the dsRNA-binding domain. Bulges are known to change the global geometry of RNA by bending the helical axis; therefore, we investigated the conformational changes of bulged RNA caused by PKR binding. A 66-mer DNA-RNA(+/- A(3) bulge)-DNA chimera was constructed and annealed to a complementary RNA strand. This duplex forces the protein to bind in the middle. A 66-mer duplex with a top strand composed of DNA-DNA(+/-A(3) bulge)-RNA was used as a control. Gel mobility-shift changes among the RNA-protein complexes are consistent with straightening of bulged RNA on protein binding. In addition, a van't Hoff analysis of p20 binding to bulged RNA reveals a favorable DeltaDeltaH degrees and an unfavorable DeltaDeltaS degrees relative to binding to straight dsRNA. These thermodynamic parameters are in good agreement with predictions from a nearest-neighbor analysis for RNA straightening and support a model in which the helical junction flanking the bulge stacks on protein binding. The ability of dsRNA-binding motif proteins to recognize and straighten bent RNA has implications for modulating the topology of RNAs in vivo.

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References
1.
Dornberger U, Hillisch A, Gollmick F, Fritzsche H, Diekmann S . Solution structure of a five-adenine bulge loop within a DNA duplex. Biochemistry. 1999; 38(39):12860-8. DOI: 10.1021/bi9906874. View

2.
Bevilacqua P, Cech T . Minor-groove recognition of double-stranded RNA by the double-stranded RNA-binding domain from the RNA-activated protein kinase PKR. Biochemistry. 1996; 35(31):9983-94. DOI: 10.1021/bi9607259. View

3.
Ramos A, Grunert S, Adams J, Micklem D, Proctor M, Freund S . RNA recognition by a Staufen double-stranded RNA-binding domain. EMBO J. 2000; 19(5):997-1009. PMC: 305639. DOI: 10.1093/emboj/19.5.997. View

4.
Agalarov S, Sridhar Prasad G, Funke P, Stout C, Williamson J . Structure of the S15,S6,S18-rRNA complex: assembly of the 30S ribosome central domain. Science. 2001; 288(5463):107-13. DOI: 10.1126/science.288.5463.107. View

5.
Fierro-Monti I, Mathews M . Proteins binding to duplexed RNA: one motif, multiple functions. Trends Biochem Sci. 2000; 25(5):241-6. DOI: 10.1016/s0968-0004(00)01580-2. View