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Bone Tissue Engineering: From Biomaterials to Clinical Trials.

Swapnali Jagadale1, Mrunal Damle1, Meghnad G Joshi2,3

  • 1Department of Stem Cells & Regenerative Medicine, Centre for Interdisciplinary Research, D Y Patil Education Society (Deemed to be University), Kolhapur, India.

Advances in Experimental Medicine and Biology
|January 29, 2025
PubMed
Summary

Bone tissue engineering utilizes biomaterials, cells, and growth factors to regenerate bone. Advances in 3D printing and stem cell therapies offer new treatments for bone defects.

Keywords:
3D printingBone regenerationBone-tissue engineeringPolymersStem cells

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Area of Science:

  • Biomaterials Science
  • Regenerative Medicine
  • Tissue Engineering

Background:

  • Bone tissue engineering aims to repair bone defects using a combination of biomaterials, cells, and signaling molecules.
  • Scaffolds mimicking bone's microstructure are created using polymers, inorganic materials, and composites.
  • Mesenchymal stem cells (MSCs) are vital for promoting regeneration and immune modulation in bone repair.

Purpose of the Study:

  • To review the current state of bone tissue engineering.
  • To highlight key biomaterials, cell sources, and growth factors used.
  • To discuss clinical applications and recent technological advancements.

Main Methods:

  • Utilizing natural and synthetic polymers, inorganic materials, and composites for scaffold fabrication.
  • Employing stem cells, particularly MSCs, for their regenerative and immunomodulatory properties.
  • Incorporating growth factors like BMPs, VEGF, and PDGF to enhance bone regeneration.

Main Results:

  • Bone tissue engineering has diverse clinical applications, including fracture repair, osteonecrosis treatment, and dental applications.
  • Emerging technologies like nanotechnology, 3D printing, and bioprinting are advancing the field.
  • Ongoing clinical trials are evaluating the safety and efficacy of various bone tissue engineering strategies.

Conclusions:

  • Bone tissue engineering holds significant potential to revolutionize patient care for bone defects and injuries.
  • Addressing challenges in standardization, scalability, cost-effectiveness, and regulation is crucial for clinical translation.
  • Continued research and development in personalized medicine approaches will further enhance treatment outcomes.