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Oxygen-Generating Biomaterials: A New, Viable Paradigm for Tissue Engineering?

Mazaher Gholipourmalekabadi1, Susan Zhao2, Benjamin S Harrison2

  • 1Cellular and Molecular Research Center, Iran University of Medical Sciences, Tehran, Iran; Department of Tissue Engineering and Regenerative Medicine, Faculty of Advanced Technologies in Medicine, Iran University of Medical Sciences, Tehran, Iran.

Trends in Biotechnology
|June 22, 2016
PubMed
Summary

Engineered tissues often lack oxygen, hindering cell survival. Oxygen-generating biomaterials in 3D scaffolds offer a promising solution to deliver oxygen and improve regenerative medicine outcomes.

Keywords:
biomaterialhypoxiaoxygen generationregenerationstem cellstissue engineering

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Area of Science:

  • Biomaterials Science
  • Regenerative Medicine
  • Tissue Engineering

Background:

  • Engineered large tissues require sufficient oxygen for cell survival and maturation.
  • Hypoxia and poor vascularization are critical challenges in tissue engineering.
  • Current methods struggle to deliver adequate oxygen deep within tissue constructs.

Purpose of the Study:

  • To review oxygen-generating reagents and biomaterials for tissue engineering.
  • To assess the potential of these materials as 3D scaffolds in regenerative medicine.
  • To address challenges of ischemia in engineered tissues.

Main Methods:

  • Critical assessment of existing literature on oxygen-generating biomaterials.
  • Analysis of approaches for developing oxygen-generating biomaterials.
  • Evaluation of clinical potential for regenerative medicine applications.

Main Results:

  • Oxygen-generating biomaterials offer a novel approach to overcome oxygen transport limitations.
  • These materials can mitigate ischemia in large engineered tissue constructs.
  • Various oxygen-generating reagents and scaffold development strategies exist.

Conclusions:

  • Oxygen-generating biomaterials represent a significant advancement for tissue engineering.
  • Their application in 3D scaffolds holds promise for clinical regenerative medicine.
  • Further development is needed to fully realize their therapeutic potential.