Coupling of static ultramicromagnetic field with elastic micropillar-structured substrate for cell response.

Mater Today Bio

Joint Key Laboratory of the Ministry of Education, Institute of Applied Physics and Materials Engineering, University of Macau, Avenida da Universidade, Taipa, Macau.

Published: December 2023

AI Article Synopsis

  • Micropillars are gaining attention in biology, and their effects combined with magnetic fields on cell behavior are still not well-explored.
  • This study focused on H9c2 cells and compared the effects of regular PDMS micropillars with those enhanced by ultramicromagnetic NdFeB particles.
  • Findings showed that cells on ultramicromagnetic micropillars proliferated better, had improved cytoskeletal layouts, and exhibited less oxidative stress, suggesting these micropillars could be valuable in tissue engineering and cellular research.

Article Abstract

Micropillars have emerged as promising tools for a wide range of biological applications, while the influence of magnetic fields on cell behavior regulation has been increasingly recognized. However, the combined effect of micropillars and magnetic fields on cell behaviors remains poorly understood. In this study, we investigated the responses of H9c2 cells to ultramicromagnetic micropillar arrays using NdFeB as the tuned magnetic particles. We conducted a comparative analysis between PDMS micropillars and NdFeB/PDMS micropillars to assess their impact on cell function. Our results revealed that H9c2 cells exhibited significantly enhanced proliferation and notable cytoskeletal rearrangements on the ultramicromagnetic micropillars, surpassing the effects observed with pure PDMS micropillars. Immunostaining further indicated that cells cultured on ultramicromagnetic micropillars displayed heightened contractility compared to those on PDMS micropillars. Remarkably, the ultramicromagnetic micropillars also demonstrated the ability to decrease reactive oxygen species (ROS) levels, thereby preventing F-actin degeneration. Consequently, this study introduces ultramicromagnetic micropillars as a novel tool for the regulation and detection of cell behaviors, thus paving the way for advanced investigations in tissue engineering, single-cell analysis, and the development of flexible sensors for cellular-level studies.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10594574PMC
http://dx.doi.org/10.1016/j.mtbio.2023.100831DOI Listing

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