Biotechnological aspects of the working-out and manufacturing of living bone equivalent

Dmytro Zubov, Iurii Poliachenko, Oleksandr Kostrub, R. Blonskyi, O.M. Magomedov, Oleksii Dolgopolov, I. Zasadnyuk
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Abstract

Objective. To handle biotechnological aspects in manufacturing processes of three-dimensional living bone equivalent for restoration of critical sized bone defects for innovative treatment of combat-related casualties. Methods. To fabricate living bone equivalent we used devitalized xenogeneic bone scaffolds (DBM chips) and autologous fibrin hydrogel seeded with autologous cultured bone marrow-derived multipotent mesenchymal stem/stromal cells (BM-MSCs). Quality/identity control of cell cultures was assured by donor and cell culture infection screening (IFA, PCR), flow cytometry (cell phenotype), karyotyping (GTG banding), functional assays (CFU assay, multilineage differentiation assay). Results. The BM-MSC cultures had a normal karyotype and appropriate phenotype, multilinear differentiation potential and functional properties, appropriate CFU frequency and hadn’t any signs of cell senescence. The FDA/PI combined staining showed the demineralized bone chips’ regular seeding with viable cells. Conclusions. An actual regenerative medicine approach to organ-saving transplantation of the three-dimensional living bone equivalent for combat-related casualties requires further preclinical and clinical approbation for thorough studies on the bone integrity restoration, forming new bone tissue in a site of bone defect, and duration of rehabilitation period compared to the gold standard of the conventional bone defect cure.
活骨等同物的加工和制造所涉及的生物技术问题
目标。处理三维活骨等效物制造过程中的生物技术问题,以修复关键尺寸的骨缺损,创新性地治疗与战斗有关的伤员。方法。为了制造活骨等效物,我们使用了脱水异种骨支架(DBM 芯片)和自体纤维蛋白水凝胶,并在其中播种了自体培养的骨髓多能间充质干细胞/基质细胞(BM-MSCs)。通过供体和细胞培养物感染筛查(IFA、PCR)、流式细胞术(细胞表型)、核型(GTG 带)、功能检测(CFU 检测、多线性分化检测)确保细胞培养物的质量/特性控制。结果。BM-间充质干细胞培养物具有正常的核型和适当的表型、多线性分化潜能和功能特性、适当的CFU频率,没有任何细胞衰老迹象。FDA/PI 联合染色显示,脱矿物质骨片定期播种有活力的细胞。结论与传统的骨缺损治疗金标准相比,通过三维活骨等效物移植挽救器官的实际再生医学方法需要进一步的临床前和临床批准,以便对骨完整性的恢复、骨缺损部位新骨组织的形成以及康复期的长短进行全面研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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