Formation and culture of cell spheroids by using magnetic nanostructures resembling a crown of thorns.

Biofabrication

Engineering Technology Research Center of Henan Province for MEMS Manufacturing and Applications, School of Mechanics and Safety Engineering, Zhengzhou University, Zhengzhou 450001, People's Republic of China.

Published: August 2024

AI Article Synopsis

  • This study explores the development of a novel three-dimensional (3D) cell-culture model using a unique magnetic nanostructure designed to enhance cell organization and mimic complex environments.
  • The magnetic crown of thorns (MCT) nanostructure was able to quickly isolate cells, specifically Jurkat cells, and encouraged them to form uniform spheroids within just 30 minutes by using mild magnetic forces.
  • The resulting cell clusters not only maintained their structural integrity after separation but also exhibited strong growth and survival rates for up to 96 hours, showcasing the MCT's potential in improving 3D cell-culture models and applications in magnetic tissue engineering.

Article Abstract

In contrast to traditional two-dimensional cell-culture conditions, three-dimensional (3D) cell-culture models closely mimic complexconditions. However, constructing 3D cell culture models still faces challenges. In this paper, by using micro/nano fabrication method, including lithography, deposition, etching, and lift-off, we designed magnetic nanostructures resembling a crown of thorns. This magnetic crown of thorns (MCT) nanostructure enables the isolation of cells that have endocytosed magnetic particles. To assess the utility of this nanostructure, we used high-flux acquisition of Jurkat cells, an acute-leukemia cell line exhibiting the native phenotype, as an example. The novel structure enabled Jurkat cells to form spheroids within just 30 min by leveraging mild magnetic forces to bring together endocytosed magnetic particles. The size, volume, and arrangement of these spheroids were precisely regulated by the dimensions of the MCT nanostructure and the array configuration. The resulting magnetic cell clusters were uniform in size and reached saturation after 1400 s. Notably, these cell clusters could be easily separated from the MCT nanostructure through enzymatic digestion while maintaining their integrity. These clusters displayed a strong proliferation rate and survival capabilities, lasting for an impressive 96 h. Compared with existing 3D cell-culture models, the approach presented in this study offers the advantage of rapid formation of uniform spheroids that can mimicmicroenvironments. These findings underscore the high potential of the MCT in cell-culture models and magnetic tissue enginerring.

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Source
http://dx.doi.org/10.1088/1758-5090/ad6794DOI Listing

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