AI Article Synopsis

  • Electric fields play crucial roles in various biological processes in the body, including cell signaling and tissue regeneration, leading to advancements in devices like biosensors and electrodes.
  • Traditional biomedical devices often require invasive power supplies for operation, highlighting the need for minimally invasive electric field applications.
  • Magnetoelectric (ME) materials show promising potential for creating localized electric fields using magnetic fields, with ongoing research focused on their synthesis, biocompatibility, and applications in electrical stimulation of cells and tissues.

Article Abstract

Electric fields are ubiquitous throughout the body, playing important role in a multitude of biological processes including osteo-regeneration, cell signaling, nerve regeneration, cardiac function, and DNA replication. An increased understanding of the role of electric fields in the body has led to the development of devices for biomedical applications that incorporate electromagnetic fields as an intrinsically novel functionality (e.g., bioactuators, biosensors, cardiac/neural electrodes, and tissues scaffolds). However, in the majority of the aforementioned devices, an implanted power supply is necessary for operation, and therefore requires highly invasive procedures. Thus, the ability to apply electric fields in a minimally invasive manner to remote areas of the body remains a critical and unmet need. Here, we report on the potential of magnetoelectric (ME)-based composites to overcome this challenge. ME materials are capable of producing localized electric fields in response to an applied magnetic field, which the body is permeable to. Yet, the use of ME materials for biomedical applications is just beginning to be explored. Here, we present on the potential of ME materials to be utilized in biomedical applications. This will be presented alongside current state-of-the-art for in vitro and in vivo electrical stimulation of cells and tissues. We will discuss key findings in the field, while also identifying challenges, such as the synthesis and characterization of biocompatible ME materials, challenges in experimental design, and opportunities for future research that would lead to the increased development of ME biomaterials and their applications.

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Source
http://dx.doi.org/10.1109/TUFFC.2020.3020283DOI Listing

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