4.5 Article

The Extended Hadamard Transform: Sensitivity-Enhanced NMR Experiments Among Labile and Non-Labile 1Hs of SARS-CoV-2-derived RNAs

期刊

CHEMPHYSCHEM
卷 23, 期 4, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/cphc.202100704

关键词

NMR spectroscopy; Hadamard encoding; NOESY; nucleic acids; SARS-CoV-2 genome

资金

  1. EU [828946]
  2. Israel Science Foundation [965/18, 3572/20]
  3. Perlman Family Foundation
  4. Israel Academy of Sciences and Humanities
  5. Council for Higher Education Excellence Fellowship Program for International Postdoctoral Researchers
  6. Goethe Corona Funds
  7. EU
  8. DFG
  9. state of Hessen
  10. German-Israel Foundation [G-1501-302]

向作者/读者索取更多资源

Hadamard encoded saturation transfer can improve the efficiency and sensitivity of NOE-based NMR correlations in proteins, glycans, and RNAs. However, it fails in correlating labile protons within a pool. This study proposes an extended Hadamard scheme that allows for artifact-free correlations within the labile pool and between labile and non-labile protons, while still benefiting from Hadamard encoding and solvent repolarizations. The extended Hadamard scheme demonstrates clean, artifact-free, sensitivity-enhancing performance on RNA fragments derived from the SARS-CoV-2 genome.
Hadamard encoded saturation transfer can significantly improve the efficiency of NOE-based NMR correlations from labile protons in proteins, glycans and RNAs, increasing the sensitivity of cross-peaks by an order of magnitude and shortening experimental times by >= 100-fold. These schemes, however, fail when tackling correlations within a pool of labile protons - for instance imino-imino correlations in RNAs or amide-amide correlations in proteins. Here we analyze the origin of the artifacts appearing in these experiments and propose a way to obtain artifact-free correlations both within the labile pool as well as between labile and non-labile (1)Hs, while still enjoying the gains arising from Hadamard encoding and solvent repolarizations. The principles required for implementing what we define as the extended Hadamard scheme are derived, and its clean, artifact-free, sensitivity-enhancing performance is demonstrated on RNA fragments derived from the SARS-CoV-2 genome. Sensitivity gains per unit time approaching an order of magnitude are then achieved in both imino-imino and imino-amino/aromatic protons 2D correlations; similar artifact-free sensitivity gains can be observed when carrying out extended Hadamard encodings of 3D NOESY/HSQC-type experiments. The resulting spectra reveal significantly more correlations than their conventionally acquired counterparts, which can support the spectral assignment and secondary structure determination of structured RNA elements.

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