Literature DB >> 31949004

A 300-fold enhancement of imino nucleic acid resonances by hyperpolarized water provides a new window for probing RNA refolding by 1D and 2D NMR.

Mihajlo Novakovic1, Gregory L Olsen1,2, György Pintér3, Daniel Hymon3, Boris Fürtig3, Harald Schwalbe4, Lucio Frydman5.   

Abstract

NMR sensitivity-enhancement methods involving hyperpolarized water could be of importance for solution-state biophysical investigations. Hyperpolarized water (HyperW) can enhance the 1H NMR signals of exchangeable sites by orders of magnitude over their thermal counterparts, while providing insight into chemical exchange and solvent accessibility at a site-resolved level. As HyperW's enhancements are achieved by exploiting fast solvent exchanges associated with minimal interscan delays, possibilities for the rapid monitoring of chemical reactions and biomolecular (re)folding are opened. HyperW NMR can also accommodate heteronuclear transfers, facilitating the rapid acquisition of 2-dimensional (2D) 15N-1H NMR correlations, and thereby combining an enhanced spectral resolution with speed and sensitivity. This work demonstrates how these qualities can come together for the study of nucleic acids. HyperW injections were used to target the guanine-sensing riboswitch aptamer domain (GSRapt) of the xpt-pbuX operon in Bacillus subtilis Unlike what had been observed in proteins, where residues benefited of HyperW NMR only if/when sufficiently exposed to water, these enhancements applied to every imino resonance throughout the RNA. The >300-fold enhancements observed in the resulting 1H NMR spectra allowed us to monitor in real time the changes that GSRapt undergoes upon binding hypoxanthine, a high-affinity interaction leading to conformational refolding on a ∼1-s timescale at 36 °C. Structural responses could be identified for several nucleotides by 1-dimensional (1D) imino 1H NMR as well as by 2D HyperW NMR spectra acquired upon simultaneous injection of hyperpolarized water and hypoxanthine. The folding landscape revealed by this HyperW strategy for GSRapt, is briefly discussed.

Entities:  

Keywords:  RNA structure; hyperpolarized NMR; nuclear magnetic resonance; riboswitch refolding; sensitivity enhancement

Mesh:

Substances:

Year:  2020        PMID: 31949004      PMCID: PMC7007528          DOI: 10.1073/pnas.1916956117

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  52 in total

1.  Double- and zero-quantum NMR relaxation dispersion experiments sampling millisecond time scale dynamics in proteins.

Authors:  Vladislav Yu Orekhov; Dmitry M Korzhnev; Lewis E Kay
Journal:  J Am Chem Soc       Date:  2004-02-18       Impact factor: 15.419

Review 2.  Structures of RNA switches: insight into molecular recognition and tertiary structure.

Authors:  Harald Schwalbe; Janina Buck; Boris Fürtig; Jonas Noeske; Jens Wöhnert
Journal:  Angew Chem Int Ed Engl       Date:  2007       Impact factor: 15.336

3.  Progress in hyperpolarized ultrafast 2D NMR spectroscopy.

Authors:  Mor Mishkovsky; Lucio Frydman
Journal:  Chemphyschem       Date:  2008-11-10       Impact factor: 3.102

4.  Modeling of Polarization Transfer Kinetics in Protein Hydration Using Hyperpolarized Water.

Authors:  Jihyun Kim; Mengxiao Liu; Christian Hilty
Journal:  J Phys Chem B       Date:  2017-06-29       Impact factor: 2.991

5.  Accelerated NMR spectroscopy by using compressed sensing.

Authors:  Krzysztof Kazimierczuk; Vladislav Yu Orekhov
Journal:  Angew Chem Int Ed Engl       Date:  2011-04-29       Impact factor: 15.336

6.  Nonuniform sampling of hypercomplex multidimensional NMR experiments: Dimensionality, quadrature phase and randomization.

Authors:  Adam D Schuyler; Mark W Maciejewski; Alan S Stern; Jeffrey C Hoch
Journal:  J Magn Reson       Date:  2015-03-10       Impact factor: 2.229

7.  High-Resolution 2D NMR of Disordered Proteins Enhanced by Hyperpolarized Water.

Authors:  Or Szekely; Gregory Lars Olsen; Isabella C Felli; Lucio Frydman
Journal:  Anal Chem       Date:  2018-03-26       Impact factor: 6.986

Review 8.  Nonuniform sampling and non-Fourier signal processing methods in multidimensional NMR.

Authors:  Mehdi Mobli; Jeffrey C Hoch
Journal:  Prog Nucl Magn Reson Spectrosc       Date:  2014-10-13       Impact factor: 9.795

9.  Increase in signal-to-noise ratio of > 10,000 times in liquid-state NMR.

Authors:  Jan H Ardenkjaer-Larsen; Björn Fridlund; Andreas Gram; Georg Hansson; Lennart Hansson; Mathilde H Lerche; Rolf Servin; Mikkel Thaning; Klaes Golman
Journal:  Proc Natl Acad Sci U S A       Date:  2003-08-20       Impact factor: 11.205

10.  Monitoring Hydrogenation Reactions using Benchtop 2D NMR with Extraordinary Sensitivity and Spectral Resolution.

Authors:  Dariusz Gołowicz; Krzysztof Kazimierczuk; Mateusz Urbańczyk; Tomasz Ratajczyk
Journal:  ChemistryOpen       Date:  2019-02-14       Impact factor: 2.911

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  8 in total

Review 1.  Hyperpolarized water as universal sensitivity booster in biomolecular NMR.

Authors:  Christian Hilty; Dennis Kurzbach; Lucio Frydman
Journal:  Nat Protoc       Date:  2022-05-11       Impact factor: 17.021

2.  Interfacing Liquid State Hyperpolarization Methods with NMR Instrumentation.

Authors:  Pierce Pham; Ratnamala Mandal; Chang Qi; Christian Hilty
Journal:  J Magn Reson Open       Date:  2022-03-10

3.  Inversion of Hyperpolarized 13C NMR Signals through Cross-Correlated Cross-Relaxation in Dissolution DNP Experiments.

Authors:  Mattia Negroni; David Guarin; Kateryna Che; Ludovica M Epasto; Ertan Turhan; Albina Selimović; Fanny Kozak; Samuel Cousin; Daniel Abergel; Geoffrey Bodenhausen; Dennis Kurzbach
Journal:  J Phys Chem B       Date:  2022-06-08       Impact factor: 3.466

Review 4.  Developments in solution-state NMR yield broader and deeper views of the dynamic ensembles of nucleic acids.

Authors:  Bei Liu; Honglue Shi; Hashim M Al-Hashimi
Journal:  Curr Opin Struct Biol       Date:  2021-04-06       Impact factor: 7.786

5.  Secondary structure determination of conserved SARS-CoV-2 RNA elements by NMR spectroscopy.

Authors:  Anna Wacker; Julia E Weigand; Sabine R Akabayov; Nadide Altincekic; Jasleen Kaur Bains; Elnaz Banijamali; Oliver Binas; Jesus Castillo-Martinez; Erhan Cetiner; Betül Ceylan; Liang-Yuan Chiu; Jesse Davila-Calderon; Karthikeyan Dhamotharan; Elke Duchardt-Ferner; Jan Ferner; Lucio Frydman; Boris Fürtig; José Gallego; J Tassilo Grün; Carolin Hacker; Christina Haddad; Martin Hähnke; Martin Hengesbach; Fabian Hiller; Katharina F Hohmann; Daniel Hymon; Vanessa de Jesus; Henry Jonker; Heiko Keller; Bozana Knezic; Tom Landgraf; Frank Löhr; Le Luo; Klara R Mertinkus; Christina Muhs; Mihajlo Novakovic; Andreas Oxenfarth; Martina Palomino-Schätzlein; Katja Petzold; Stephen A Peter; Dennis J Pyper; Nusrat S Qureshi; Magdalena Riad; Christian Richter; Krishna Saxena; Tatjana Schamber; Tali Scherf; Judith Schlagnitweit; Andreas Schlundt; Robbin Schnieders; Harald Schwalbe; Alvaro Simba-Lahuasi; Sridhar Sreeramulu; Elke Stirnal; Alexey Sudakov; Jan-Niklas Tants; Blanton S Tolbert; Jennifer Vögele; Lena Weiß; Julia Wirmer-Bartoschek; Maria A Wirtz Martin; Jens Wöhnert; Heidi Zetzsche
Journal:  Nucleic Acids Res       Date:  2020-12-16       Impact factor: 16.971

6.  Room-temperature dynamic nuclear polarization enhanced NMR spectroscopy of small biological molecules in water.

Authors:  Danhua Dai; Xianwei Wang; Yiwei Liu; Xiao-Liang Yang; Clemens Glaubitz; Vasyl Denysenkov; Xiao He; Thomas Prisner; Jiafei Mao
Journal:  Nat Commun       Date:  2021-11-25       Impact factor: 14.919

7.  Toward protein NMR at physiological concentrations by hyperpolarized water-Finding and mapping uncharted conformational spaces.

Authors:  Ludovica M Epasto; Kateryna Che; Fanny Kozak; Albina Selimovic; Pavel Kadeřávek; Dennis Kurzbach
Journal:  Sci Adv       Date:  2022-08-05       Impact factor: 14.957

Review 8.  Parahydrogen-Induced Polarization of Amino Acids.

Authors:  Andrey N Pravdivtsev; Gerd Buntkowsky; Simon B Duckett; Igor V Koptyug; Jan-Bernd Hövener
Journal:  Angew Chem Int Ed Engl       Date:  2021-08-13       Impact factor: 15.336

  8 in total

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