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Paper-Based Microfluidics for Tissue Engineering and Regenerative Medicine.

Jaehun Lee1,2, Haoyue Luo3, Yun-Ya Chen1,4

  • 1Center for Immunotherapy and Precision Immuno-Oncology, Lerner Research Institute, Cleveland Clinic Foundation, Cleveland, Ohio, USA.

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|March 13, 2025
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Summary

Paper-based microfluidics offer a cost-effective and versatile platform for tissue engineering and regenerative medicine. Recent innovations enhance functionality for applications like 3D cell culture and disease modeling.

Keywords:
3D cell culturePaper-based microfluidicsRegenerative medicineTissue engineering

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Area of Science:

  • Biomedical Engineering
  • Regenerative Medicine
  • Materials Science

Background:

  • Paper-based microfluidics are cost-effective, biocompatible platforms for biological and medical applications.
  • They enable replication of complex tissue environments, serving as alternatives to traditional microfluidic systems.

Purpose of the Study:

  • To review recent advances in paper-based microfluidics for tissue engineering and regenerative medicine.
  • To highlight key applications, fabrication innovations, and integration of biomaterials.
  • To address challenges and future directions in the field.

Main Methods:

  • Review of recent literature on paper-based microfluidic advancements.
  • Analysis of fabrication techniques (e.g., wax printing, inkjet printing).
  • Examination of biomaterial integration and surface modification strategies.

Main Results:

  • Paper-based microfluidics are advancing 3D cell culture, bioanalysis assays, and high-throughput screening.
  • Fabrication innovations improve functionality and scalability.
  • Biomaterial integration enhances physiological replication and cellular behavior studies.

Conclusions:

  • Paper-based microfluidic systems are transformative for tissue engineering and regenerative medicine due to simplicity and versatility.
  • Ongoing innovations bridge the gap between research and clinical applications.
  • These systems support personalized medicine, regenerative therapies, and disease modeling.