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  • 1
    ISSN: 1573-5001
    Keywords: Site-specific labeling of RNA ; 15N labeling of guanine and adenine ; Inosine-for-guanine substitution
    Source: Springer Online Journal Archives 1860-2000
    Topics: Biology , Chemistry and Pharmacology
    Notes: Abstract The secondary structure of a recently identified ATP-binding RNA aptamer consists of apurine-rich 11-residue internal loop positioned opposite a single guanine bulge flanked oneither side by helical stem segments. The ATP ligand targets the internal loop and bulgedomains, inducing a structural transition in this RNA segment on complex formation.Specifically, 10 new slowly exchanging proton resonances in the imino, amino and sugarhydroxyl chemical shift range are observed on AMP–RNA aptamer complex formation.This paper outlines site-specific labeling approaches to identify slowly exchanging imino(guanine) and amino (guanine and adenine) protons in internal loop and bulge segments ofcompact RNA folds such as found in the AMP–RNA aptamer complex. One approachincorporates 15N-labeled guanine (N1 imino and N2 amino positions) and 15N-labeledadenine (N6 amino position), one residue at a time, in the AMP-binding RNA aptamer, withlabeling incorporation through chemical synthesis facilitated by generating the aptamer fromtwo separate strands. The unambiguous assignments deduced from the 15N labeling studieshave been verified from an independent labeling strategy where individual guanines in theinternal loop have been replaced, one at a time, by inosines and assignments were made onthe basis of the large 2 ppm downfield shift of the guanine imino protons on inosinesubstitution. The strengths and limitations of the inosine-for-guanine substitution approachemerge from our studies on the AMP–RNA aptamer complex. The assignment of theinternal loop and bulge imino and amino protons was critical in our efforts to define thesolution structure of the AMP–RNA aptamer complex since these slowly exchangingprotons exhibit a large number of long-range intramolecular NOEs within the RNA, as wellas intermolecular NOEs to the AMP in the complex. The current application of specific 15Nand inosine labeling approaches for exchangeable imino and amino proton assignments in thenonhelical segments of an RNA aptamer complex in our laboratory complements selective 2Hand 13C approaches to assign nonexchangeable base and sugar protons in RNA andligand–RNA complexes reported in the literature.
    Type of Medium: Electronic Resource
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  • 2
    ISSN: 1573-5001
    Keywords: FKBP12 ; NMR detection ; sensitivity enhancement ; side chain–side chain hydrogen bonds
    Source: Springer Online Journal Archives 1860-2000
    Topics: Biology , Chemistry and Pharmacology
    Notes: Abstract We describe the direct observation of side chain–side chain hydrogen bonding interactions in proteins with sensitivity-enhanced NMR spectroscopy. Specifically, the remote correlation between the guanidinium nitrogen 15Nε of arginine 71, which serves as the hydrogen donor, and the acceptor carboxylate carbon 13CO2 γ of aspartate 100 in a 12 kDa protein, human FKBP12, is detected via the trans-hydrogen bond 3h J Nε CO2γ coupling by employing a novel HNCO-type experiment, soft CPD-HNCO. The 3h J Nε CO2γ coupling constant appears to be even smaller than the average value of backbone 3h J NC′ couplings, consistent with more extensive local dynamics in protein side chains. The identification of trans-hydrogen bond J-couplings between protein side chains should provide useful markers for monitoring hydrogen bonding interactions that contribute to the stability of protein folds, to alignments within enzyme active sites and to recognition events at macromolecular interfaces.
    Type of Medium: Electronic Resource
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  • 3
    ISSN: 1573-5001
    Keywords: FKBP12 ; NMR detection ; sensitivity enhancement ; side chain–main chain hydrogen bonds
    Source: Springer Online Journal Archives 1860-2000
    Topics: Biology , Chemistry and Pharmacology
    Notes: Abstract We describe the direct observation of very weak side chain–main chain hydrogen bonding interactions in medium-size 13C/15N-labeled proteins with sensitivity-enhanced NMR spectroscopy. Specifically, the remote correlation between the hydrogen acceptor side chain carboxylate carbon 13CO2 δ of glutamate 54 and the hydrogen donor backbone amide 15N of methionine 49 in a 12 kDa protein, human FKBP12, is detected via the trans-hydrogen bond 3h J NCO2δ coupling by employing a novel sensitivity-enhanced HNCO-type experiment, CPD-HNCO. The 3h J NCO2δ coupling constant appears to be even smaller than the average value of backbone 3h J NC′ couplings, consistent with more extensive local dynamics in protein side chains.
    Type of Medium: Electronic Resource
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