Label-free magnetic resonance imaging to locate live cells in three-dimensional porous scaffolds

Author:

Abarrategi A.12,Fernandez-Valle M. E.3,Desmet T.4,Castejón D.3,Civantos A.1,Moreno-Vicente C.1,Ramos V.1,Sanz-Casado J. V.1,Martínez-Vázquez F. J.5,Dubruel P.4,Miranda P.5,López-Lacomba J. L.1

Affiliation:

1. Institute of Biofunctional Studies, Nuclear Magnetic Resonance, Complutense University, Paseo Juan XXIII, 1, 28040 Madrid, Spain

2. Área Biología Celular y Desarrollo, Instituto de Salud Carlos III, Carretera Majadahonda-Pozuelo Km 2200, 28220 Majadahonda, Spain

3. Research Assistance Center, Nuclear Magnetic Resonance, Complutense University, Paseo Juan XXIII, 1, 28040 Madrid, Spain

4. Polymer Chemistry and Biomaterials Research Group, Department of Organic Chemistry, Gent University, Krijgslaan 281 S4, 9000 Gent, Belgium

5. Departamento de Ingeniería Mecánica, Energética y de los Materiales, Universidad de Extremadura, Avda de Elvas s/n., 06071 Badajoz, Spain

Abstract

Porous scaffolds are widely tested materials used for various purposes in tissue engineering. A critical feature of a porous scaffold is its ability to allow cell migration and growth on its inner surface. Up to now, there has not been a method to locate live cells deep inside a material, or in an entire structure, using real-time imaging and a non-destructive technique. Herein, we seek to demonstrate the feasibility of the magnetic resonance imaging (MRI) technique as a method to detect and locate in vitro non-labelled live cells in an entire porous material. Our results show that the use of optimized MRI parameters (4.7 T; repetition time = 3000 ms; echo time = 20 ms; resolution 39 × 39 µm) makes it possible to obtain images of the scaffold structure and to locate live non-labelled cells in the entire material, with a signal intensity higher than that obtained in the culture medium. In the current study, cells are visualized and located in different kinds of porous scaffolds. Moreover, further development of this MRI method might be useful in several three-dimensional biomaterial tests such as cell distribution studies, routine qualitative testing methods and in situ monitoring of cells inside scaffolds.

Publisher

The Royal Society

Subject

Biomedical Engineering,Biochemistry,Biomaterials,Bioengineering,Biophysics,Biotechnology

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