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Related Experiment Video

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Recent Advances in Microfluidics and Bioelectronics for Three-Dimensional Organoid Interfaces.

Caroline Ferguson1,2, Yan Li3, Yi Zhang1

  • 1Department of Biomedical Engineering, College of Engineering, University of Connecticut, 260 Glenbrook Rd., Storrs, CT 06269, USA.

Arxiv
|November 24, 2025
PubMed
Summary

Organoids provide better biological models than 2D cultures or animal models. Advanced 3D microfluidic and bioelectronic systems enhance organoid monitoring and manipulation for applications in personalized medicine and disease modeling.

Keywords:
3D Flexible Electronics3D MicrofluidicsOrgan-on-a-ChipOrganoids

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Area of Science:

  • Biomedical Engineering
  • Cell Biology
  • Materials Science

Background:

  • Organoids offer superior feature recapitulation and more consistent clinical results compared to 2D cultures and animal models, respectively.
  • Current limitations include challenges in culture longevity, reproducibility, and non-disruptive monitoring of organoids.
  • Recent advancements in materials and microfabrication are enabling new ways to interact with organoid models.

Purpose of the Study:

  • To review recent advances in 3D interfaces for organoid manipulation and monitoring.
  • To highlight the potential of these advanced systems in drug delivery, personalized medicine, and disease modeling.
  • To discuss future considerations for improving organoid longevity and technological development.

Main Methods:

  • Integration of microfluidics and bioelectronics using advanced materials.
  • Application of microfabrication techniques like 3D printing and compressive buckling.
  • Development of non-disruptive methods for manipulating and monitoring organoid models.

Main Results:

  • 3D interfaces enable enhanced manipulation and monitoring of organoids.
  • Advanced systems show potential for improved drug delivery and disease modeling.
  • Technological integration facilitates more robust and reproducible organoid studies.

Conclusions:

  • Organoids, when coupled with advanced 3D microfluidic and bioelectronic systems, represent a significant leap in biological modeling.
  • Continued technological development is crucial for overcoming current limitations, particularly in achieving long-term culture and enhanced reproducibility.
  • These integrated systems hold immense promise for revolutionizing personalized medicine and disease research.