Magnetic levitation assisted biofabrication, culture, and manipulation of 3D cellular structures using a ring magnet based setup

Diamagnetic levitation is an emerging technology for remote manipulation of cells in cell and tissue level applications. Low‐cost magnetic levitation configurations using permanent magnets are commonly composed of a culture chamber physically sandwiched between two block magnets that limit working v...

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Veröffentlicht in:Biotechnology and bioengineering 2021-12, Vol.118 (12), p.4771-4785
Hauptverfasser: Anil‐Inevi, Muge, Delikoyun, Kerem, Mese, Gulistan, Tekin, H. Cumhur, Ozcivici, Engin
Format: Artikel
Sprache:eng
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Zusammenfassung:Diamagnetic levitation is an emerging technology for remote manipulation of cells in cell and tissue level applications. Low‐cost magnetic levitation configurations using permanent magnets are commonly composed of a culture chamber physically sandwiched between two block magnets that limit working volume and applicability. This work describes a single ring magnet‐based magnetic levitation system to eliminate physical limitations for biofabrication. Developed configuration utilizes sample culture volume for construct size manipulation and long‐term maintenance. Furthermore, our configuration enables convenient transfer of liquid or solid phases during the levitation. Before biofabrication, we first calibrated/ the platform for levitation with polymeric beads, considering the single cell density range of viable cells. By taking advantage of magnetic focusing and cellular self‐assembly, millimeter‐sized 3D structures were formed and maintained in the system allowing easy and on‐site intervention in cell culture with an open operational space. We demonstrated that the levitation protocol could be adapted for levitation of various cell types (i.e., stem cell, adipocyte and cancer cell) representing cells of different densities by modifying the paramagnetic ion concentration that could be also reduced by manipulating the density of the medium. This technique allowed the manipulation and merging of separately formed 3D biological units, as well as the hybrid biofabrication with biopolymers. In conclusion, we believe that this platform will serve as an important tool in broad fields such as bottom‐up tissue engineering, drug discovery and developmental biology. A ring magnet‐based levitation platform was developed for the label‐ and scaffold‐free biofabrication of self‐assembled 3D living structures and combine living building blocks. This magnetic levitation configuration provides an open and large operational space allowing for the formation and maintenance of sizeable living constructs and straightforward manipulations during levitation. The magnetic force aided assembly using a single permanent magnet can be utilized to generate complex living structures for bottom‐up tissue engineering, drug testing and cancer research.
ISSN:0006-3592
1097-0290
DOI:10.1002/bit.27941