Dynamic characteristics of GMP reductase complexes revealed by high resolution 31P field cycling NMR relaxometry.
Biochemistry. 2018 Mar 16;:
Authors: Rosenberg MM, Redfield AG, Roberts M, Hedstrom L
Abstract
The ability of enzymes to modulate the dynamics of bound substrates and cofactors is a critical feature of catalysis, but the role of dynamics has largely been approached from the perspective of the protein. Here we use an underappreciated NMR technique, subtesla high resolution field cycling 31P NMR relaxometry, to interrogate the dynamics of enzyme bound substrates and cofactors in guanosine-5'-monophosphate reductase (GMPR). These experiments reveal distinct binding modes and dynamic profiles associated with the 31P nuclei in the Michaelis complexes for the deamination and hydride transfer steps of the catalytic cycle. Importantly, the substrate is constrained and the cofactor is more dynamic in the deamination complex E•GMP•NADP+, while the substrate is more dynamic and the cofactor is constrained in the hydride transfer complex E•IMP•NADP+. Moreover, the binding mode of GMP in the NADP+ complex is not consistent with the currently available crystal structures of inactive complexes. The presence of D2O perturbed the relaxation of the 31P nuclei in E•IMP•NADP+, but not in E•GMP•NADP+, providing further evidence of distinct binding modes, with different dynamic properties, for substrates and cofactors in the two stages of the catalytic cycle. dIMP and dGMP are poor substrates, with values of Vmax an order of magnitude smaller than IMP and GMP. The binding mode and dynamic profile, as monitored by field cycling, of dGMP in its cofactor complex closely resembles that of IMP in the hydride transfer complex, and thus is not compatible with deamination. The binding mode of dIMP resembles that of GMP, and thus is not suitable for hydride transfer. The substrate 2'-OH interacts with Asp219 in the crystal structures, and mutation of Asp219 to Ala decreases the value of Vmax by a factor of 30. Counterintuitively, loss of Asp219 makes both substrates and cofactors less dynamic in the active site. These observations suggest that rather than position the substrate and cofactor for catalysis, the interactions between the substrate 2'-OH and Asp219 coordinate the dynamic properties of the Michaelis complexes, and these dynamics are important for progression through the catalytic cycle.
PMID: 29547266 [PubMed - as supplied by publisher]
Molecular dynamics-based selectivity for Fast-Field-Cycling relaxometry by Overhauser and solid effect dynamic nuclear polarization #DNPNMR
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Molecular dynamics-based selectivity for Fast-Field-Cycling relaxometry by Overhauser and solid effect dynamic nuclear polarization #DNPNMR
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Neudert, O., C. Mattea, and S. Stapf, Molecular dynamics-based selectivity for Fast-Field-Cycling relaxometry by Overhauser and solid effect dynamic nuclear polarization. J. Magn. Reson., 2017. 276: p. 113-121.
http://www.sciencedirect.com/science/article/pii/S1090780717300204
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05-23-2017 04:44 AM
[NMR paper] Substrate and Cofactor Dynamics on Guanosine Monophosphate Reductase Probed by High Resolution Field Cycling 31P NMR Relaxometry.
Substrate and Cofactor Dynamics on Guanosine Monophosphate Reductase Probed by High Resolution Field Cycling 31P NMR Relaxometry.
Related Articles Substrate and Cofactor Dynamics on Guanosine Monophosphate Reductase Probed by High Resolution Field Cycling 31P NMR Relaxometry.
J Biol Chem. 2016 Sep 9;
Authors: Rosenberg MM, Redfield AG, Roberts MF, Hedstrom L
Abstract
Guanosine-5'-monophosphate reductase (GMPR) catalyzes the reduction of GMP to IMP and ammonia with concomitant oxidation of NADPH. Here we investigated the structure...
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09-22-2016 06:31 AM
[NMR paper] New applications and perspectives of fast field cycling NMR relaxometry.
New applications and perspectives of fast field cycling NMR relaxometry.
http://www.bionmr.com//www.ncbi.nlm.nih.gov/corehtml/query/egifs/http:--media.wiley.com-assets-2250-98-WileyOnlineLibrary_FullTextOnline_120x27.gif Related Articles New applications and perspectives of fast field cycling NMR relaxometry.
Magn Reson Chem. 2015 Apr 9;
Authors: Steele RM, Korb JP, Ferrante G, Bubici S
Abstract
The field cycling NMR relaxometry method (also known as fast field cycling (FFC) when instruments employing fast electrical switching of...
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04-11-2015 12:04 AM
Fast-field-cycling relaxometry enhanced by Dynamic Nuclear Polarization
From The DNP-NMR Blog:
Fast-field-cycling relaxometry enhanced by Dynamic Nuclear Polarization
Neudert, O., et al., Fast-field-cycling relaxometry enhanced by Dynamic Nuclear Polarization. Microporous and Mesoporous Materials, 2015. 205(0): p. 70-74.
http://www.sciencedirect.com/science/article/pii/S1387181114003941
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04-06-2015 02:58 PM
[NMR paper] Nanosecond timescale motions in proteins revealed by high-resolution NMR relaxometry.
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J Am Chem Soc. 2013 Nov 14;
Authors: Charlier CD, Khan SN, Marquardsen T, Pelupessy P, Reiss V, Sakellariou D, Bodenhausen G, Engelke F, Ferrage F
Abstract
Understanding the molecular determinants underlying protein function requires the characterization of both structure and dynamics at atomic resolution. Nuclear relaxation rates allow a precise...
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11-16-2013 03:14 PM
Field-cycling NMR relaxometry of viscous liquids and polymers
Field-cycling NMR relaxometry of viscous liquids and polymers
May 2012
Publication year: 2012
Source:Progress in Nuclear Magnetic Resonance Spectroscopy, Volume 63</br>
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12-15-2012 09:51 AM
Field-cycling NMR relaxometry of viscous liquids and polymers
Field-cycling NMR relaxometry of viscous liquids and polymers
May 2012
Publication year: 2012
Source:Progress in Nuclear Magnetic Resonance Spectroscopy, Volume 63</br>
</br>
Graphical abstract
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12-01-2012 06:10 PM
[NMR paper] High-resolution 31p field cycling NMR as a probe of phospholipid dynamics.
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J Am Chem Soc. 2004 Oct 27;126(42):13765-77
Authors: Roberts MF, Redfield AG
We have used high-resolution field-cycling 31P NMR spectroscopy to measure spin-lattice relaxation rates (R1 = 1/T1) of multicomponent phospholipid vesicle and micelle samples over a large field range, from 0.1 to 11.7 T. The shape of the curve for R1 as a function of field and a model-free analysis were...