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Incorporating Moldable Demineralized Dentin Matrix into Treatment for a Jaw Cyst.

Jeong-Kui Ku1, Han-Wool Kwak1, In-Woong Um2

  • 1Department of Oral and Maxillofacial Surgery, School of Dentistry and Institute of Oral Bioscience, Research Institute of Clinical Medicine of Jeonbuk National University, Biomedical Research Institute of Jeonbuk National University Hospital, Jeonbuk National University, Jeonju 54907, Republic of Korea.

Journal of Functional Biomaterials
|May 26, 2023
PubMed
Summary

Enucleation for jaw cysts can cause bony defects. Moldable-demineralized dentin matrix (M-DDM) shows promise as a bone graft substitute, aiding regeneration and healing in cystic defects.

Keywords:
bone graft surgeryconnective tissue graftdemineralized dentin matrixdentistryfistula closure

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Area of Science:

  • Oral and Maxillofacial Surgery
  • Biomaterials Science
  • Regenerative Medicine

Background:

  • Enucleation of jaw cysts commonly leads to post-operative bony defects.
  • These defects pose risks including pathologic fracture, delayed healing, and radiographic misinterpretation.
  • Current bone graft options like autogenous bone have limitations, driving research into tissue-engineered substitutes.

Observation:

  • A case report details the use of moldable-demineralized dentin matrix (M-DDM) for managing cystic defects.
  • M-DDM is a tissue-engineered material designed to promote bone regeneration.
  • The study focuses on M-DDM's application in filling post-enucleation bony defects.

Findings:

  • The case report demonstrates the efficacy of M-DDM in promoting bone healing within a cystic defect.
  • M-DDM facilitated regeneration, addressing the complications associated with untreated bony defects.
  • Successful application suggests M-DDM's potential as a viable bone graft alternative.

Implications:

  • M-DDM offers a promising alternative to autogenous bone grafts for jaw cyst defects.
  • This biomaterial may reduce complications and improve patient outcomes after enucleation.
  • Further research into M-DDM could advance regenerative strategies in oral surgery.