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      Characterization of the kinetics of RNA annealing and strand displacement activities of the E. coli DEAD-box helicase CsdA

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          Abstract

          CsdA is one of five E. coli DEAD-box helicases and as a cold-shock protein assists RNA structural remodeling at low temperatures. The helicase has been shown to catalyze duplex unwinding in an ATP-dependent way and accelerate annealing of complementary RNAs, but detailed kinetic analyses are missing. Therefore, we performed kinetic measurements using a coupled annealing and strand displacement assay with high temporal resolution to analyze how CsdA balances the two converse activities. We furthermore tested the hypothesis that the unwinding activity of DEAD-box helicases is largely determined by the substrate’s thermodynamic stability using full-length CsdA and a set of RNAs with constant length, but increasing GC content. The rate constants for strand displacement did indeed decrease with increasing duplex stability, with a calculated free energy between -31.3 and -40 kcal/mol being the limit for helix unwinding. Thus, our data generally support the above hypothesis, showing that for CsdA substrate thermal stability is an important rate limiting factor.

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          Most cited references39

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          The DEAD-box protein family of RNA helicases.

          RNA helicases of the DEAD-box protein family have been shown to participate in every aspect of RNA metabolism. They are present in most organisms where they work as RNA helicases or RNPases. The properties of these enzymes in vivo remains poorly described, however some were extensively characterized in vitro, and the solved crystal structures of a few are now available. Taken together, this information gives insight into the regulation of ATP and RNA binding as well as in the ATPase and helicase activities. This review will focus on the description of the molecular characteristics of members of the DEAD-box protein family and on the enzymatic activities they possess.
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            Structural basis for RNA unwinding by the DEAD-box protein Drosophila Vasa.

            DEAD-box RNA helicases, which regulate various processes involving RNA, have two RecA-like domains as a catalytic core to alter higher-order RNA structures. We determined the 2.2 A resolution structure of the core of the Drosophila DEAD-box protein Vasa in complex with a single-stranded RNA and an ATP analog. The ATP analog intensively interacts with both of the domains, thereby bringing them into the closed form, with many interdomain interactions of conserved residues. The bound RNA is sharply bent, avoiding a clash with a conserved alpha helix in the N-terminal domain. This "wedge" helix should disrupt base pairs by bending one of the strands when a duplex is bound. Mutational analyses indicated that the interdomain interactions couple ATP hydrolysis to RNA unwinding, probably through fine positioning of the duplex relative to the wedge helix. This mechanism, which differs from those for canonical translocating helicases, may enable the targeted modulation of intricate RNA structures.
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              RNA chaperones and the RNA folding problem.

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                Author and article information

                Journal
                RNA Biol
                RNA Biol
                RNA
                RNA Biology
                Landes Bioscience
                1547-6286
                1555-8584
                01 January 2013
                01 January 2013
                : 10
                : 1
                : 149-156
                Affiliations
                [1 ]Max F. Perutz Laboratories; Department for Biochemistry; Vienna, Austria
                [2 ]Max F. Perutz Laboratories; Department of Structural and Computational Biology; Vienna, Austria
                Author notes
                [* ]Correspondence to: Renée Schroeder, Email: renee.schroeder@ 123456univie.ac.at
                Article
                2012RNABIOL0195R 23475
                10.4161/rna.23475
                3590231
                23291905
                5bd4bdf0-660e-4d15-8b73-ac561dab5e2e
                Copyright © 2013 Landes Bioscience

                This is an open-access article licensed under a Creative Commons Attribution-NonCommercial 3.0 Unported License. The article may be redistributed, reproduced, and reused for non-commercial purposes, provided the original source is properly cited.

                History
                Categories
                Brief Communication

                Molecular biology
                dead-box helicase,csda,dead,stpa,rna chaperone,rna annealing,strand displacement,kinetics,fret
                Molecular biology
                dead-box helicase, csda, dead, stpa, rna chaperone, rna annealing, strand displacement, kinetics, fret

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