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Monitoring tissue implants by field-cycling 1H-MRI via the detection of changes in the 14N-quadrupolar-peak from imidazole moieties incorporated in a 'smart' scaffold material

Authors :
David J. Lurie
Enza Di Gregorio
Lionel Broche
P. James Ross
Nicholas Senn
Silvio Aime
Simona Baroni
Rachele Stefania
Simonetta Geninatti Crich
Valeria Bitonto
Source :
Journal of Materials Chemistry B. 9:4863-4872
Publication Year :
2021
Publisher :
Royal Society of Chemistry (RSC), 2021.

Abstract

This study is focused on the development of innovative sensors to non-invasively monitor the tissue implant status by Fast-Field-Cycling Magnetic Resonance Imaging (FFC-MRI). These sensors are based on oligo-histidine moieties that are conjugated to PLGA polymers representing the structural matrix for cells hosting scaffolds. The presence of 14N atoms of histidine causes a quadrupolar relaxation enhancement (also called Quadrupolar Peak, QP) at 1.39 MHz. This QP falls at a frequency well distinct from the QPs generated by endogenous semisolid proteins. The relaxation enhancement is pH dependent in the range 6.5–7.5, thus it acts as a reporter of the scaffold integrity as it progressively degrades upon lowering the microenvironmental pH. The ability of this new sensors to generate contrast in an image obtained at 1.39 MHz on a FFC-MRI scanner is assessed. A good biocompatibility of the histidine-containing scaffolds is observed after its surgical implantation in healthy mice. Over time the scaffold is colonized by endogenous fibroblasts and this process is accompanied by a progressive decrease of the intensity of the relaxation peak. In respect to the clinically used contrast agents this material has the advantage of generating contrast without the use of potentially toxic paramagnetic metal ions.

Details

ISSN :
20507518 and 2050750X
Volume :
9
Database :
OpenAIRE
Journal :
Journal of Materials Chemistry B
Accession number :
edsair.doi.dedup.....a5109d2138b5d5a11ffa66aa450d7442
Full Text :
https://doi.org/10.1039/d1tb00775k