AI Article Synopsis

  • Human mesenchymal stem cells (hMSCs) respond to mechanical and biophysical signals, with pulsed electromagnetic field (PEMF) stimulation showing promise in treating musculoskeletal disorders and enhancing bone tissue engineering.
  • This study examines the effects of PEMF on bone regeneration by creating trabecular bone-like tissues, culturing them in a bioreactor, and analyzing cellular signaling pathways through transcriptomic studies.
  • Results indicate that PEMF boosts hMSC immune responses and stimulates processes like angiogenesis and osteogenesis, reflecting key aspects of bone healing, showcasing the potential of the bioreactor platform for future research.

Article Abstract

Introduction: Human mesenchymal stem cells (hMSCs) sense and respond to biomechanical and biophysical stimuli, yet the involved signaling pathways are not fully identified. The clinical application of biophysical stimulation including pulsed electromagnetic field (PEMF) has gained momentum in musculoskeletal disorders and bone tissue engineering.

Methodology: We herein aim to explore the role of PEMF stimulation in bone regeneration by developing trabecular bone-like tissues, and then, culturing them under bone-like mechanical stimulation in an automated perfusion bioreactor combined with a custom-made PEMF stimulator. After selecting the optimal cell seeding and culture conditions for inspecting the effects of PEMF on hMSCs, transcriptomic studies were performed on cells cultured under direct perfusion with and without PEMF stimulation.

Results: We were able to identify a set of signaling pathways and upstream regulators associated with PEMF stimulation and to distinguish those linked to bone regeneration. Our findings suggest that PEMF induces the immune potential of hMSCs by activating and inhibiting various immune-related pathways, such as macrophage classical activation and MSP-RON signaling in macrophages, respectively, while promoting angiogenesis and osteogenesis, which mimics the dynamic interplay of biological processes during bone healing.

Conclusions: Overall, the adopted bioreactor-based investigation platform can be used to investigate the impact of PEMF stimulation on bone regeneration.

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Source
http://dx.doi.org/10.1016/j.bone.2024.117065DOI Listing

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