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用纳米结构β-TCP-胶原刺激人骨髓基质细胞促进颅骨骨愈合与用脂肪组织基质细胞抑制颅骨骨愈合的比较。

Stimulation of calvarial bone healing with human bone marrow stromal cells versus inhibition with adipose-tissue stromal cells on nanostructured β-TCP-collagen.

机构信息

Research Center for Experimental Orthopaedics, Heidelberg University Hospital, Schlierbacher Landstr. 200a, 69118 Heidelberg, Germany.

Research Center for Experimental Orthopaedics, Heidelberg University Hospital, Schlierbacher Landstr. 200a, 69118 Heidelberg, Germany.

出版信息

Acta Biomater. 2018 Aug;76:135-145. doi: 10.1016/j.actbio.2018.06.026. Epub 2018 Jun 20.

Abstract

UNLABELLED

Bioactive functional scaffolds are essential for support of cell-based strategies to improve bone regeneration. Adipose-tissue-derived-stromal cells (ASC) are more accessible multipotent cells with faster proliferation than bone-marrow-derived-stromal-cells (BMSC) having potential to replace BMSC for therapeutic stimulation of bone-defect healing. Their osteogenic potential is, however, lower compared to BMSC, a deficit that may be overcome in growth factor-rich orthotopic bone defects with enhanced bone-conductive scaffolds. Objective of this study was to compare the therapeutic potency of human ASC and BMSC for bone regeneration on a novel nanoparticulate β-TCP/collagen-carrier (β-TNC). Cytotoxicity of β-TCP nanoparticles and multilineage differentiation of cells were characterized in vitro. Cell-seeded β-TNC versus cell-free controls were implanted into 4 mm calvarial bone-defects in immunodeficient mice and bone healing was quantified by µCT at 4 and 8 weeks. Tissue-quality and cell-origin were assessed by histology. β-TNC was non-toxic, radiolucent and biocompatible, lent excellent support for human cell persistence and allowed formation of human bone tissue by BMSC but not ASC. Opposite to BMSC, ASC-grafting significantly inhibited calvarial bone healing compared to controls. Bone formation progressed significantly from 4 to 8 weeks only in BMSC and controls yielding 5.6-fold more mineralized tissue in BMSC versus ASC-treated defects. Conclusively, β-TNC was simple to generate, biocompatible, osteoconductive, and stimulated osteogenicity of BMSC to enhance calvarial defect healing while ASC had negative effects. Thus, an orthotopic environment and β-TNC could not compensate for cell-autonomous deficits of ASC which should systematically be considered when choosing the right cell source for tissue engineering-based stimulation of bone regeneration.

STATEMENT OF SIGNIFICANCE

Bone-marrow-derived-stromal cells (BMSC) implanted on bone replacement materials can support bone defect healing and adipose-tissue-derived-stromal cells (ASC) being more accessible and better proliferating are considered as alternate source. This first standardized comparison of the bone regeneration potency of human ASC and BMSC was performed on a novel nanoparticular β-TCP-enriched collagen-carrier (β-TNC) designed to overcome the known inferior osteogenicity of ASC. β-TNC was non-toxic, biocompatible and osteoconductive supporting human bone formation and defect-closure by BMSC but not ASC. Long-term cell-persistence and the distinct secretome of ASC appear as main reasons why ASC inhibited bone healing opposite to BMSC. Overall, ASC-grafting is at considerable risk of producing negative effects on bone-healing while no such risks are known for BMSC.

摘要

非标记

生物活性功能支架对于支持基于细胞的策略以改善骨再生至关重要。脂肪组织衍生的基质细胞 (ASC) 是更易获得的多能细胞,其增殖速度比骨髓基质细胞 (BMSC) 更快,具有替代 BMSC 以治疗性刺激骨缺损愈合的潜力。然而,与 BMSC 相比,其成骨潜能较低,这一缺陷可以在富含生长因子的原位骨缺损中通过增强骨传导支架来克服。本研究的目的是比较新型纳米β-TCP/胶原载体 (β-TNC) 上人类 ASC 和 BMSC 对骨再生的治疗效果。在体外对β-TCP 纳米粒子的细胞毒性和多谱系分化进行了表征。将细胞接种的β-TNC 与无细胞对照物植入免疫缺陷小鼠的 4mm 颅骨缺损中,并在 4 周和 8 周时通过 µCT 定量评估骨愈合。通过组织学评估组织质量和细胞来源。β-TNC 无毒性、不透射线且生物相容,非常适合人类细胞的持久性,并允许 BMSC 而不是 ASC 形成人类骨组织。与 BMSC 相反,与对照组相比,ASC 移植明显抑制颅骨骨愈合。仅在 BMSC 和对照组中,从第 4 周到第 8 周,骨形成显著进展,BMSC 治疗的缺陷中矿化组织增加了 5.6 倍。总之,β-TNC 易于生成,生物相容,具有骨传导性,并刺激 BMSC 的成骨活性,以增强颅骨缺损愈合,而 ASC 则产生负面影响。因此,在选择用于组织工程刺激骨再生的正确细胞来源时,应系统考虑 ASC 的细胞自主性缺陷,原位环境和β-TNC 不能弥补 ASC 的缺陷。

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