The MutT protein, a 129-residue enzyme from Escherichia coli which prevents A.T-->C.G mutations, catalyzes the hydrolysis of nucleoside triphosphates (NTP) to nucleoside monophosphates (NMP) and pyrophosphate [Bhatnagar, S. K., Bullions, L. C., & Bessman, M. J. (1991) J. Biol. Chem. 266, 9050-9054], by a mechanism involving nucleophilic substitution at the rarely attacked beta-phosphorus of NTP [Weber, D. J., Bhatnagar, S. K., Bullions, L. C., Bessman, M. J., & Mildvan, A. S. (1992a) J. Biol. Chem. 267, 16939-16942]. The bacterial MutT gene was inserted into the plasmid pET-11b under control of the T7 promoter and overexpressed in minimal media, permitting labeling of MutT with 13C and/or 15N. The yield after purification of the soluble fraction was approximately 35 mg of homogeneous MutT/L with physical and enzymatic properties indistinguishable from those of the originally isolated enzyme. Essentially complete sequence-specific assignments of the backbone HN, N, C alpha, H alpha, and CO resonances of the free enzyme (1.5 mM) were made at pH 7.4 and 32 degrees C, by heteronuclear double- and triple-resonance experiments using a modified Bruker AM 600 NMR spectrometer. Specifically, 1H[15N]HSQC, 1H[15N]TOCSY-HMQC, and 1H[15N]NOESY-HMQC experiments were done with uniformly 15N-labeled enzyme. A 1H[15N] HSQC experiment was done with selective [alpha-15N]Lys-labeled enzyme. Also HNCA, HN(CO)CA, HNCO, constant time 1H[13C]HSQC, HCACO, and HCA(CO)N experiments were done with uniformly 13C- and 15N-labeled enzyme. Sequence-specific assignments were initiated from HN and 15N chemical shifts of Gly residues and of selectively labeled Lys residues in 1H[15N]HSQC experiments. They were confirmed by C alpha chemical shifts of Ala residues uniquely identified by residual coupling to C beta resonances in constant time 1H[13C]HSQC experiments. The sequence-specific assignments proceeded bidirectionally, terminating at Pro residues and at residues with undetectable NH signals, and the segments were linked to complete the backbone assignments. The backbone assignments reported here have permitted the interpretation of NOEs in the elucidation of the solution secondary structure of MutT, and the C alpha and H alpha chemical shifts have provided an independent approach to identifying secondary structural elements and to define their extent [Weber, D. J., Abeygunawardana, C., Bessman, M. J., & Mildvan, A. S. (1993) Biochemistry (following paper in this issue)].
[NMR paper] Sequence-specific NMR resonance assignments of the backbone atoms for the olfactory m
Sequence-specific NMR resonance assignments of the backbone atoms for the olfactory marker protein, OMP.
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J Biomol NMR. 2000 Aug;17(4):353-4
Authors: Baldisseri DM, Margolis JW, Omotosho PA, Volkman BF, Margolis FL
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[NMR paper] Letter to the editor: sequence-specific 1H, 13C and 15N chemical shift backbone NMR a
Letter to the editor: sequence-specific 1H, 13C and 15N chemical shift backbone NMR assignment and secondary structure of the Arabidopsis thaliana PIN1At protein.
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J Biomol NMR. 2000 Jul;17(3):271-2
Authors: Landrieu I, Wieruszeski JM, Odaert B, Inzé D, Grzesiek S, Lippen G
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[NMR paper] Sequence-specific 1H NMR assignments and secondary structure of the streptococcal pro
Sequence-specific 1H NMR assignments and secondary structure of the streptococcal protein G B2-domain.
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Biochemistry. 1992 Apr 14;31(14):3604-11
Authors: Orban J, Alexander P, Bryan P
Two-dimensional NMR spectroscopy has been used to obtain sequence-specific 1H NMR assignments for the IgG-binding B2-domain of streptococcal protein G. Secondary structure elements were identified from analysis of characteristic backbone-backbone...
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[NMR paper] Sequence-specific NMR assignments of the trp repressor from Escherichia coli using th
Sequence-specific NMR assignments of the trp repressor from Escherichia coli using three-dimensional 15N/1H heteronuclear techniques.
http://www.ncbi.nlm.nih.gov/corehtml/query/egifs/http:--www3.interscience.wiley.com-aboutus-images-wiley_interscience_pubmed_logo_FREE_120x27.gif Related Articles Sequence-specific NMR assignments of the trp repressor from Escherichia coli using three-dimensional 15N/1H heteronuclear techniques.
Eur J Biochem. 1992 Feb 15;204(1):137-46
Authors: Borden KL, Bauer CJ, Frenkiel TA, Beckmann P, Lane AN
...
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[NMR paper] Assignments of backbone 1H, 13C, and 15N resonances and secondary structure of ribonu
Assignments of backbone 1H, 13C, and 15N resonances and secondary structure of ribonuclease H from Escherichia coli by heteronuclear three-dimensional NMR spectroscopy.
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Biochemistry. 1991 Jun 18;30(24):6036-47
Authors: Yamazaki T, Yoshida M, Kanaya S, Nakamura H, Nagayama K
The assignments of individual magnetic resonances of backbone nuclei of a larger...
[NMR paper] Complete sequence-specific 1H NMR assignments for human insulin.
Complete sequence-specific 1H NMR assignments for human insulin.
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Biochemistry. 1990 Mar 27;29(12):2906-13
Authors: Kline AD, Justice RM
Solvent conditions where human insulin could be studied by high-resolution NMR were determined. Both low pH and addition of acetonitrile were required to overcome the protein's self-association and to obtain useful spectra. Two hundred eighty-six 1H resonances were located and assigned to specific sites on the protein by using...
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[NMR paper] Sequence-specific 1H NMR assignments and secondary structure of eglin c.
Sequence-specific 1H NMR assignments and secondary structure of eglin c.
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Biochemistry. 1990 Feb 13;29(6):1465-74
Authors: Hyberts SG, Wagner G
Sequence-specific nuclear magnetic resonance assignments were obtained for eglin c, a polypeptide inhibitor of the granulocytic proteinases elastase and cathepsin G and some other proteinases. The protein consists of a single polypeptide chain of 70 residues. All proton resonances were assigned except for some...