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Spatially resolved polymer mobilization revisited – Three-dimensional, UltraShort Echo Time (3D UTE) magnetic resonance imaging of sodium alginate matrix tablets.

Authors :
Baran, Ewelina
Birczyński, Artur
Dorożyński, Przemysław
Kulinowski, Piotr
Source :
Journal of Colloid & Interface Science. Nov2023, Vol. 649, p626-634. 9p.
Publication Year :
2023

Abstract

[Display omitted] Three-dimensional 1H UltraShort Echo Time magnetic resonance imaging (1H 3D UTE MRI) of the matrix tablet made of hydrophilic polymer hydrated in heavy water (D 2 O) will allow investigation of the hydration-induced spatiotemporal evolution of the material originally included in the matrix tablet during manufacturing (i.e., polymer chains and bound water). The oblong-shaped sodium alginate matrix tablets were used to verify the hypothesis. The matrix was measured before and during hydration in D 2 O for up to 2 h using the 1H 3D UTE MRI. Five echo times (first at 20 μs) were used, resulting in five three-dimensional images (one image for each echo time). In chosen cross-sections, two parametric images, i.e., amplitude and T 2 * relaxation time maps, were calculated using "pixel-by-pixel" mono-exponential fitting. The regions of the alginate matrix with T 2 * shorter than 600 μs were analyzed before (air-dry matrix) and during hydration (parametric, spatiotemporal analysis). During the study, only hydrogen nuclei (protons) pre-existing in the air-dry sample (polymer and bound water) were monitored because the hydration medium (D 2 O) was not visible. As a result, it was found that morphological changes in regions having T 2 * shorter than 300 μs were the effect of fast initial water ingress into the core of the matrix and subsequent polymer mobilization (early hydration providing additional 5% w/w hydration medium content relating to air-dry matrix). In particular, evolving layers in T 2 * maps were detected, and a fracture network was formed shortly after the matrix immersion in D 2 O. The current study presented a coherent picture of polymer mobilization accompanied by local polymer density decrease. We concluded, that the T 2 * mapping using 3D UTE MRI can effectively be applied as a polymer mobilization marker. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00219797
Volume :
649
Database :
Academic Search Index
Journal :
Journal of Colloid & Interface Science
Publication Type :
Academic Journal
Accession number :
165550237
Full Text :
https://doi.org/10.1016/j.jcis.2023.06.139