Franck, John M. “Overhauser Dynamic Nuclear Polarization: A Tool for Building Maps of Hydration Water.” Biophysical Journal 118, no. 3, Supplement 1 (February 7, 2020): 487a.
Coating the surface of every macromolecule or macromolecular assembly, one finds a hydration layer composed of water molecules that move typically between 3× and 10× slower than water molecules in bulk water. The interaction between the water molecules in the hydration layer and the macromolecules contributes to the structural stability and sometimes the function of, e.g., proteins and lipid bilayers. Overhauser Dynamic Nuclear Polarization (ODNP) is an emerging electron-spin nuclear-spin (EPR-NMR) double-resonance tool that has demonstrated a capability of measuring the translational dynamics of water in the hydration layer. Here we discuss our efforts on two fronts: First, we design a scheme for measuring the thickness of the hydration layer and the effect of confinement on translational dynamics, as measured by ODNP, with controlled, appropriately labeled reverse micelle systems. Second, we describe the development of an a priori technique for converting ODNP measurements into a 3D “map” of hydration layer properties in dynamic room temperature samples that explore an ensemble of structures. This latter effort focuses on transmembrane model systems and utilizes the modern structure-prediction tool Rosetta in a fashion analogous to successful efforts to predict NMR order parameters. Particular focus is given to improving the quality and automation of the ODNP measurement, as well as validating predicted ensemble structures against both continuous wave EPR and NMR Paramagnetic Relaxation Enhancement (PRE) data.
Electrochemical Overhauser dynamic nuclear polarization #DNPNMR #ODNP
From The DNP-NMR Blog:
Electrochemical Overhauser dynamic nuclear polarization #DNPNMR #ODNP
Tamski, Mika, Jonas Milani, Christophe Roussel, and Jean-Philippe Ansermet. “Electrochemical Overhauser Dynamic Nuclear Polarization.” Physical Chemistry Chemical Physics 22, no. 32 (2020): 17769–76.
https://doi.org/10.1039/D0CP00984A.
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10-19-2020 05:07 PM
Characterizing oils in oil-water mixtures inside porous media by Overhauser dynamic nuclear polarization #DNPNMR #ODNP
From The DNP-NMR Blog:
Characterizing oils in oil-water mixtures inside porous media by Overhauser dynamic nuclear polarization #DNPNMR #ODNP
Chen, Junfei, Jiwen Feng, Fang Chen, Zhen Zhang, Li Chen, Zhekai Zhang, Rugang Liao, Maili Liu, and Chaoyang Liu. “Characterizing Oils in Oil-Water Mixtures inside Porous Media by Overhauser Dynamic Nuclear Polarization.” Fuel 257 (December 2019): 116107.
https://doi.org/10.1016/j.fuel.2019.116107.
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04-09-2020 05:35 AM
Optically-generated Overhauser dynamic nuclear polarization: A numerical analysis #ODNP #DNPNMR
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Optically-generated Overhauser dynamic nuclear polarization: A numerical analysis #ODNP #DNPNMR
Cheney, Daniel J., and Christopher J. Wedge. “Optically-Generated Overhauser Dynamic Nuclear Polarization: A Numerical Analysis.” The Journal of Chemical Physics 152, no. 3 (January 21, 2020): 034202.
https://doi.org/10.1063/1.5133408.
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02-29-2020 09:52 PM
Overhauser Dynamic Nuclear Polarization for the Study of Hydration Dynamics, Explained #DNPNMR #ODNP
From The DNP-NMR Blog:
Overhauser Dynamic Nuclear Polarization for the Study of Hydration Dynamics, Explained #DNPNMR #ODNP
Franck, John M., and Songi Han. “Overhauser Dynamic Nuclear Polarization for the Study of Hydration Dynamics, Explained.” In Methods in Enzymology, 615:131–75. Elsevier, 2019.
https://doi.org/10.1016/bs.mie.2018.09.024.
We outline the physical properties of hydration water that are captured by Overhauser Dynamic Nuclear Polarization (ODNP) relaxometry and explore the insights that ODNP yields about the water and the surface that this water is coupled to. As...
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05-06-2019 04:47 PM
A table-top PXI based low-field spectrometer for solution dynamic nuclear polarization #DNPNMR #ODNP
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A table-top PXI based low-field spectrometer for solution dynamic nuclear polarization #DNPNMR #ODNP
Biller, Joshua R., Karl F. Stupic, and J. Moreland. “A Table-Top PXI Based Low-Field Spectrometer for Solution Dynamic Nuclear Polarization.” Magnetic Resonance in Chemistry 56, no. 3 (2017): 153–63.
https://doi.org/10.1002/mrc.4672.
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06-20-2018 08:56 PM
Free Radical Imaging Using In Vivo Dynamic Nuclear Polarization-MRI #DNPNMR #ODNP
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Free Radical Imaging Using In Vivo Dynamic Nuclear Polarization-MRI #DNPNMR #ODNP
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Utsumi, H. and F. Hyodo, Free Radical Imaging Using In Vivo Dynamic Nuclear Polarization-MRI. Methods Enzymol, 2015. 564: p. 553-71.
https://www.ncbi.nlm.nih.gov/pubmed/26477265
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08-18-2017 04:59 PM
Chapter Sixteen - Overhauser Dynamic Nuclear Polarization Studies on Local Water Dynamics #DNPNMR
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Chapter Sixteen - Overhauser Dynamic Nuclear Polarization Studies on Local Water Dynamics #DNPNMR
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Kaminker, I., R. Barnes, and S. Han, Chapter Sixteen - Overhauser Dynamic Nuclear Polarization Studies on Local Water Dynamics, in Methods in Enzymology, Z.Q. Peter and W. Kurt, Editors. 2015, Academic Press. p. 457-483.
http://www.sciencedirect.com/science/article/pii/S0076687915004000
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03-09-2017 12:11 AM
Quantitative cw Overhauser Dynamic Nuclear Polarization for the Analysis of Local Water Dynamics
Quantitative cw Overhauser Dynamic Nuclear Polarization for the Analysis of Local Water Dynamics
Publication date: Available online 4 July 2013
Source:Progress in Nuclear Magnetic Resonance Spectroscopy</br>
Author(s): John M. Franck , Anna Pavlova , John A. Scott , Songi Han</br>
Liquid state Overhauser Effect Dynamic Nuclear Polarization (ODNP) has experienced a recent resurgence of interest. The ODNP technique described here relies on the double resonance of electron spin resonance (ESR) at the most common, i.e. X-band (~ 10 GHz), frequency and 1H nuclear...