4.6 Article

Delayed Minimally Invasive Injection of Allogenic Bone Marrow Stromal Cell Sheets Regenerates Large Bone Defects in an Ovine Preclinical Animal Model

期刊

STEM CELLS TRANSLATIONAL MEDICINE
卷 4, 期 5, 页码 503-512

出版社

ALPHAMED PRESS
DOI: 10.5966/sctm.2014-0244

关键词

Large bone defect; Mesenchymal stem cells; Allogenic; Bone tissue engineering; Cell injection; Bone regeneration; Sheep

资金

  1. National Health and Medical Research Council [1055515]
  2. Australian Research Council [LP130100945]
  3. Wesley Foundation [2012-03]
  4. German Research Foundation [BE 4492/1-2, HE 7074/1-1]
  5. Australian Research Council [LP130100945] Funding Source: Australian Research Council

向作者/读者索取更多资源

Cell-based tissue engineering approaches are promising strategies in the field of regenerative medicine. However, the mode of cell delivery is still a concern and needs to be significantly improved. Scaffolds and/or matrices loaded with cells are often transplanted into a bone defect immediately after the defect has been created. At this point, the nutrient and oxygen supply is low and the inflammatory cascade is incited, thus creating a highly unfavorable microenvironment for transplanted cells to survive and participate in the regeneration process. We therefore developed a unique treatment concept using the delayed injection of allogenic bone marrow stromal cell (BMSC) sheets to regenerate a critical-sized tibial defect in sheep to study the effect of the cells' regeneration potential when introduced at a postinflammatory stage. Minimally invasive percutaneous injection of allogenic BMSCs into biodegradable composite scaffolds 4 weeks after the defect surgery led to significantly improved bone regeneration compared with preseeded scaffold/cell constructs and scaffold-only groups. Biomechanical testing and microcomputed tomography showed comparable results to the clinical reference standard (i.e., an autologous bone graft). To our knowledge, we are the first to show in a validated preclinical large animal model that delayed allogenic cell transplantation can provide applicable clinical treatment alternatives for challenging bone defects in the future.

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