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43 Ca MAS-DNP NMR of Frozen Solutions for the Investigation of Calcium Ion Complexation
Calcium ion complexation in aqueous solutions is of paramount importance in biology as it is related to cell signaling, muscle contraction, or biomineralization. However, Ca -complexes are dynamic soluble entities challenging to describe at the molecular level. Nuclear magnetic resonance appears as...
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Published in: | ACS omega 2024-01, Vol.9 (4), p.4881-4891 |
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Main Authors: | , , , , , , |
Format: | Article |
Language: | English |
Citations: | Items that this one cites Items that cite this one |
Online Access: | Get full text |
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Summary: | Calcium ion complexation in aqueous solutions is of paramount importance in biology as it is related to cell signaling, muscle contraction, or biomineralization. However, Ca
-complexes are dynamic soluble entities challenging to describe at the molecular level. Nuclear magnetic resonance appears as a method of choice to probe Ca
-complexes. However,
Ca NMR exhibits severe limitations arising from the low natural abundance coupled to the low gyromagnetic ratio and the quadrupolar nature of
Ca, which overall make it a very unreceptive nucleus. Here, we show that
Ca dynamic nuclear polarization (DNP) NMR of
Ca-labeled frozen solutions is an efficient approach to enhance the NMR receptivity of
Ca and to obtain structural insights about calcium ions complexed with representative ligands including water molecules, ethylenediaminetetraacetic acid (EDTA), and l-aspartic acid (l-Asp). In these conditions and in combination with numerical simulations and calculations, we show that
Ca nuclei belonging to Ca
complexed to the investigated ligands exhibit rather low quadrupolar couplings (with
typically ranging from 0.6 to 1 MHz) due to high symmetrical environments and potential residual dynamics in vitrified solutions at a temperature of 100 K. As a consequence, when
H→
Ca cross-polarization (CP) is used to observe
Ca central transition, "high-power" ν
(
Ca) conditions, typically used to detect spin 1/2 nuclei, provide ∼120 times larger sensitivity than "low-power" conditions usually employed for detection of quadrupolar nuclei. These "high-power" CPMAS conditions allow two-dimensional (2D)
H-
Ca HetCor spectra to be readily recorded, highlighting various Ca
-ligand interactions in solution. This significant increase in
Ca NMR sensitivity results from the combination of distinct advantages: (i) an efficient
H-mediated polarization transfer from DNP, resembling the case of low-natural-abundance spin 1/2 nuclei, (ii) a reduced dynamics, allowing the use of CP as a sensitivity enhancement technique, and (iii) the presence of a relatively highly symmetrical Ca environment, which, combined to residual dynamics, leads to the averaging of the quadrupolar interaction and hence to efficient high-power CP conditions. Interestingly, these results indicate that the use of high-power CP conditions is an effective way of selecting symmetrical and/or dynamic
Ca environments of calcium-containing frozen solution, capable of filtering out more rigid and/or anisotropic
Ca sites charact |
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ISSN: | 2470-1343 2470-1343 |
DOI: | 10.1021/acsomega.3c08292 |