Related ArticlesSampling of protein dynamics in nanosecond time scale by 15N NMR relaxation and self-diffusion measurements.
J Biomol Struct Dyn. 1999 Aug;17(1):157-74
Authors: Orekhov VY, Korzhnev DM, Pervushin KV, Hoffmann E, Arseniev AS
This paper presents a procedure for detection of intermediate nanosecond internal dynamics in globular proteins. The procedure uses 1H-15N relaxation measurements at several spectrometer frequencies and hydrodynamic calculations based on experimental self-diffusion coefficients. New heteronuclear experiments, using pulse field gradients, are introduced for the measurement of translation diffusion coefficients of 15N labeled proteins. An advanced interpretation of recently published (Luginbühl et al., Biochemistry, 36, 7305-7312 (1997)) backbone amide 15N relaxation data, measured at two spectrometers (400 and 750 MHz for 1H) for N-terminal DNA-binding domain (1-63) of 434 repressor, is presented. Non-applicability of commonly used fast (picosecond) dynamics model (FD) was justified by (i) poor fit of relaxation data by the FD model-free spectral density function both for isotropic and anisotropic models of the overall molecular tumbling; (ii) specific dependence of the overall rotation correlation times calculated from T1/T2 ratio on the spectrometer frequency; (iii) mismatch of the ratio of longitudinal 15N relaxation times T1, measured at different spectrometer frequencies, in comparison with that anticipated for the FD model; (iv) significantly underestimated overall rotation correlation time provided by the FD model (5.50+/-0.15 and 5.80+/-0.15 ns for 750 and 400 MHz spectrometer frequency respectively) in comparison with correlation time obtained from hydrodynamics. On the other hand, all relaxation and hydrodynamics data are in good correspondence with the model of intermediate (nanoseconds) dynamics. Overall rotation correlation time of 7.5+/-0.7 ns was calculated from experimental translation self-diffusion rate using hydrodynamics formalism (Garcia de la Torre, J. and Bloomfield, V.A. Quart. Rev. Biophys., 14, 81-139 (1981)). The statistical analysis of 15N relaxation data along with the hydrodynamic consideration clearly revealed that most of the residues in 434(1-63) repressor are involved in the nanosecond internal dynamics characterized by the the mean order parameters of 0.59+/-0.06 and the correlation times of ca. 5 ns.
Microsecond Time-Scale Conformational Exchange in Proteins: Using Long Molecular Dynamics Trajectory To Simulate NMR Relaxation Dispersion Data
Microsecond Time-Scale Conformational Exchange in Proteins: Using Long Molecular Dynamics Trajectory To Simulate NMR Relaxation Dispersion Data
Yi Xue, Joshua M. Ward, Tairan Yuwen, Ivan S. Podkorytov and Nikolai R. Skrynnikov
http://pubs.acs.org/appl/literatum/publisher/achs/journals/content/jacsat/0/jacsat.ahead-of-print/ja206442c/aop/images/medium/ja-2011-06442c_0001.gif
Journal of the American Chemical Society
DOI: 10.1021/ja206442c
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http://feeds.feedburner.com/~r/acs/jacsat/~4/NvRRKHU2H3k
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Quantifying millisecond time-scale exchange in proteins by CPMG relaxation dispersion NMR spectroscopy of side-chain carbonyl groups
Quantifying millisecond time-scale exchange in proteins by CPMG relaxation dispersion NMR spectroscopy of side-chain carbonyl groups
Abstract A new pulse sequence is presented for the measurement of relaxation dispersion profiles quantifying millisecond time-scale exchange dynamics of side-chain carbonyl groups in uniformly 13C labeled proteins. The methodology has been tested using the 87-residue colicin E7 immunity protein, Im7, which is known to fold via a partially structured low populated intermediate that interconverts with the folded, ground state on the millisecond time-scale....
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Quantifying millisecond time-scale exchange in proteins by CPMG relaxation dispersion NMR spectroscopy of side-chain carbonyl groups.
Quantifying millisecond time-scale exchange in proteins by CPMG relaxation dispersion NMR spectroscopy of side-chain carbonyl groups.
Quantifying millisecond time-scale exchange in proteins by CPMG relaxation dispersion NMR spectroscopy of side-chain carbonyl groups.
J Biomol NMR. 2011 Jun 18;
Authors: Hansen AL, Kay LE
A new pulse sequence is presented for the measurement of relaxation dispersion profiles quantifying millisecond time-scale exchange dynamics of side-chain carbonyl groups in uniformly (13)C labeled proteins. The methodology has...
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06-18-2011 01:10 PM
[NMR paper] Measurement of slow (micros-ms) time scale dynamics in protein side chains by (15)N r
Measurement of slow (micros-ms) time scale dynamics in protein side chains by (15)N relaxation dispersion NMR spectroscopy: application to Asn and Gln residues in a cavity mutant of T4 lysozyme.
Related Articles Measurement of slow (micros-ms) time scale dynamics in protein side chains by (15)N relaxation dispersion NMR spectroscopy: application to Asn and Gln residues in a cavity mutant of T4 lysozyme.
J Am Chem Soc. 2001 Feb 7;123(5):967-75
Authors: Mulder FA, Skrynnikov NR, Hon B, Dahlquist FW, Kay LE
A new NMR experiment is presented for...
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11-19-2010 08:32 PM
Probing Microsecond Time Scale Dynamics in Proteins by Methyl 1H Carr-Purcell-Meiboom
Probing Microsecond Time Scale Dynamics in Proteins by Methyl 1H Carr-Purcell-Meiboom-Gill Relaxation Dispersion NMR Measurements. Application to Activation of the Signaling Protein NtrCr
Renee Otten, Janice Villali, Dorothee Kern and Frans A. A. Mulder
http://pubs.acs.org/appl/literatum/publisher/achs/journals/content/jacsat/0/jacsat.ahead-of-print/ja107410x/aop/images/medium/ja-2010-07410x_0008.gif
Journal of the American Chemical Society
DOI: 10.1021/ja107410x
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http://feeds.feedburner.com/~r/acs/jacsat/~4/aNQDkVtDj-4
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Probing Microsecond Time Scale Dynamics in Proteins by Methyl (1)H Carr-Purcell-Meibo
Probing Microsecond Time Scale Dynamics in Proteins by Methyl (1)H Carr-Purcell-Meiboom-Gill Relaxation Dispersion NMR Measurements. Application to Activation of the Signaling Protein NtrC(r).
Probing Microsecond Time Scale Dynamics in Proteins by Methyl (1)H Carr-Purcell-Meiboom-Gill Relaxation Dispersion NMR Measurements. Application to Activation of the Signaling Protein NtrC(r).
J Am Chem Soc. 2010 Nov 8;
Authors: Otten R, Villali J, Kern D, Mulder FA
To study microsecond processes by relaxation dispersion NMR spectroscopy, low power...
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11-10-2010 02:29 PM
Microsecond Time Scale Mobility in a Solid Protein As Studied by the (15)N R(1rho) Si
Microsecond Time Scale Mobility in a Solid Protein As Studied by the (15)N R(1rho) Site-Specific NMR Relaxation Rates.
Related Articles Microsecond Time Scale Mobility in a Solid Protein As Studied by the (15)N R(1rho) Site-Specific NMR Relaxation Rates.
J Am Chem Soc. 2010 Aug 6;
Authors: Krushelnitsky A, Zinkevich T, Reichert D, Chevelkov V, Reif B
For the first time, we have demonstrated the site-resolved measurement of reliable (i.e., free of interfering effects) (15)N R(1rho) relaxation rates from a solid protein to extract dynamic...
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Monitoring H-D exchange on second time scale with Frydman NMR spectroscopy
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Real-Time Monitoring of Chemical Transformations by Ultrafast 2D NMR Spectroscopy
Maayan Gal, Mor Mishkovsky, and Lucio Frydman
J. Am. Chem. Soc.; 2006; 128(3) pp 951 - 956;
Abstract: