A Nanoparticle Ink Allowing the High Precision Visualization of Tissue Engineered Scaffolds by MRI

Author:

Leon‐Chaviano Samila12ORCID,Kiseleva Mariia12ORCID,Legros Philippe12ORCID,Collin Simon3ORCID,Lescot Théophraste12,Henoumont Céline4ORCID,Gossuin Yves5ORCID,Laurent Sophie4ORCID,Mayrand Dominique16ORCID,Fradette Julie167ORCID,Bégin‐Drolet André3,Ruel Jean3,Fortin Marc‐André12ORCID

Affiliation:

1. Centre de Recherche du Centre Hospitalier Universitaire de Québec – Université Laval (CR CHUQ) Axe Médecine Régénératrice Quebec City Québec G1L 3L5 Canada

2. Département de Génie des Mines de la Métallurgie et des Matériaux Université Laval Quebec City Québec G1V 0A6 Canada

3. Département de Génie Mécanique Université Laval Quebec City Québec G1V 0A6 Canada

4. Département de Chimie Générale Organique et Biomédicale Université de Mons Mons 7000 Belgium

5. Service de Physique Biomédicale Université de Mons Mons 7000 Belgium

6. Département de Chirurgie Faculté de Médecine Université Laval Quebec City Québec G1V 0A6 Canada

7. Centre de Recherche en Organogénèse Expérimentale de l'Université Laval/LOEX 1401, 18e rue Quebec City Québec G1J 1Z4 Canada

Abstract

AbstractHydrogels are widely used as cell scaffolds in several biomedical applications. Once implanted in vivo, cell scaffolds must often be visualized, and monitored overtime. However, cell scaffolds appear poorly contrasted in most biomedical imaging modalities such as magnetic resonance imaging (MRI). MRI is the imaging technique of choice for high‐resolution visualization of low‐density, water‐rich tissues. Attempts to enhance hydrogel contrast in MRI are performed with “negative” contrast agents that produce several image artifacts impeding the delineation of the implant's contours. In this study, a magnetic ink based on ultra‐small iron oxide nanoparticles (USPIONs; <5 nm diameter cores) is developed and integrated into biocompatible alginate hydrogel used in cell scaffolding applications. Relaxometric properties of the magnetic hydrogel are measured, as well as biocompatibility and MR‐visibility (T1‐weighted mode; in vitro and in vivo). A 2‐week MR follow‐up study is performed in the mouse model, demonstrating no image artifacts, and the retention of “positive” contrast overtime, which allows very precise delineation of tissue grafts with MRI. Finally, a 3D‐contouring procedure developed to facilitate graft delineation and geometrical conformity assessment is applied on an inverted template alginate pore network. This proof‐of‐concept establishes the possibility to reveal precisely engineered hydrogel structures using this USPIONs ink high‐visibility approach.

Funder

Canada Foundation for Innovation

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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