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1H, 15N and 13C resonance assignments and secondary structure determination of the RNA-binding domain of E. coli rho protein
Authors:Deborah M Briercheck  Timothy J Allison  John P Richardson  Jeffery F Ellena  Todd C Wood  Gordon S Rule
Institution:(1) Department of Biochemistry, University of Virginia School of Medicine, Box 440, 22908 Charlottesville, VA, U.S.A.;(2) Department of Chemistry, Indiana University, 47405 Bloomington, IN, U.S.A.;(3) Department of Chemistry, University of Virginia, 22908 Charlottesville, VA, U.S.A.;(4) Department of Biological Sciences, Carnegie Mellon University, 4400 Fifth Avenue, 15217 Pittsburgh, PA, U.S.A.
Abstract:Summary Protein fragments containing the RNA-binding domain of Escherichia coli rho protein have been over-expressed in E. coli. NMR spectra of the fragment containing residues 1–116 of rho protein (Rho116) show that a region of this protein is unfolded in solution. Addition of (dC)10 to this fragment stabilizes the folded form of the protein. The fragment comprising residues 1–130 of rho protein (Rho130) is found to be stably folded, both in the absence and presence of nucleic acid. NMR studies of the complex of Rho 130 with RNA and DNA oligonucleotides indicate that the binding-site size, affinity, and specificity of Rho 130 are similar to those of intact rho protein; therefore, Rho 130 is a suitable model of the RNA-binding domain of rho protein. NMR line widths as well as titration experiments of Rho130 complexed with oligonucleotides of various lengths suggest that Rho130 forms oligomers in the presence of longer oligonucleotides. 1H, 15N and 13C resonance assignments were facilitated by the utilization of two pulse sequences, CN-NOESY and CCH-TOCSY. The secondary structure of unliganded Rho130 has been determined by NMR techniques, and it is clear that the RNA-binding domain of rho is more structurally similar to the cold shock domain than to the RNA recognition motif.Abbreviations Rho116, Rho130 protein containing the first 116 (130) residues of rho - CSD cold shock domain - RRM RNA recognition motif - RBD RNA-binding domain - IPTG isopropyl beta-D-thiogalactopyranoside - EDTA ethylenediaminetetraacetic acid - NOE nuclear Overhauser enhancement
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