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Bioengineering toolkits for potentiating organoid therapeutics.

Sewon Park1, Seung-Woo Cho2

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Advanced Drug Delivery Reviews
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PubMed
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Organoid technology shows promise for regenerative medicine but faces challenges like lack of vasculature and reliance on tumor-derived matrices. This study explores engineering strategies and biocompatible materials to overcome these limitations for organoid transplantation.

Keywords:
AssembloidBiomaterialsGene editingOrganoid transplantationVascularization

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Area of Science:

  • Biomedical Engineering
  • Regenerative Medicine
  • Tissue Engineering

Background:

  • Organoids are 3D multicellular constructs mimicking organ structure and function, widely used in biomedical research.
  • Advancements position organoids as promising for regenerative medicine, but limitations persist.
  • Current organoids lack vasculature, have limited function, and are too small for clinical use, hindering transplantation success.

Purpose of the Study:

  • To describe engineering strategies for overcoming organoid limitations.
  • To explore alternative biocompatible materials for organoid culture.
  • To highlight progress in organoid transplantation for functional organ restoration.

Main Methods:

  • Review of current organoid engineering strategies.
  • Analysis of alternative biomaterials for organoid culture.
  • Examination of organoid transplantation studies focusing on functional recovery.

Main Results:

  • Identified limitations of current organoids including vasculature absence and reliance on tumor-derived matrices.
  • Discussed engineering approaches to enhance organoid size, functionality, and vascularization.
  • Highlighted progress in using biocompatible materials and transplantation for organ regeneration.

Conclusions:

  • Engineering strategies and biocompatible materials are crucial for advancing organoid applications in regenerative medicine.
  • Overcoming current limitations will enable successful organoid transplantation and functional restoration.
  • Further research into organoid development and transplantation holds significant therapeutic potential.