Department of Oral and Maxillofacial Surgery, Lanzhou General Hospital, Lanzhou Command of PLA, Gansu, ChinaDepartment of Oral and Maxillofacial Surgery, School of Stomatology, Fourth Military Medical University, Shaanxi, ChinaRege Lab of Tissue Engineering, Department of Bioscience, Faculty of Life Science, Northwest University, Shaanxi, ChinaDepartment of Orthodontics, School of Stomatology, Lanzhou University, Gansu, China.
Clin Oral Implants Res. 2011 Oct;22(10):1193-1199. doi: 10.1111/j.1600-0501.2010.02091.x. Epub 2011 Feb 8.
The periosteum plays an important role in bone regeneration. However, the harvesting of autogenous periosteum is associated with disadvantages such as donor site morbidity and limited donor sources. This study uses an osteogenic predifferentiated cell sheet to fabricate a scaffold-free tissue-engineered periosteum (TEP).
We generated an osteogenic predifferentiated cell sheet from rabbit bone marrow stromal cells (BMSCs) using a continuous culture system and harvested it using a scraping technique. Then, the in vitro characterization of the sheet was investigated using microscopy investigation, quantitative analysis of alkaline phosphatase (ALP) activity, and RT-PCR. Next, we demonstrated the in vivo osteogenic potential of the engineered sheet in ectopic sites together with a porous β-tricalcium phosphate ceramic. Finally, we evaluated its efficiency in treating delayed fracture healing after wrapping the cell sheet around the mandible in a rabbit model.
The engineered periosteum showed sporadic mineralized nodules, elevated ALP activity, and up-regulated gene expression of osteogenic markers. After implantation in the subcutaneous pockets of the donor rabbits, the in vivo bone-forming capability of the engineered periosteum was confirmed by histological examinations. Additionally, when wrapping the engineered periosteum around a mandibular fracture gap, we observed improved bone healing and reduced amounts of fibrous tissue at the fracture site.
The osteogenic predifferentiated BMSC sheet can act as a scaffold-free TEP to facilitate bone regeneration. Hence, our study provides a promising strategy for enhancing bone regeneration in clinical settings.
骨膜在骨再生中起着重要作用。然而,自体骨膜的采集存在缺点,如供体部位发病率和有限的供体来源。本研究使用成骨预分化细胞片来制造无支架组织工程骨膜(TEP)。
我们使用连续培养系统从兔骨髓基质细胞(BMSCs)中生成成骨预分化细胞片,并使用刮取技术收获细胞片。然后,通过显微镜检查、碱性磷酸酶(ALP)活性的定量分析和 RT-PCR 对片的体外特性进行了研究。接下来,我们在异位部位展示了工程化片与多孔β-磷酸三钙陶瓷一起的成骨潜力。最后,我们评估了在兔模型中包裹细胞片环绕下颌骨治疗延迟性骨折愈合的效率。
工程化骨膜显示出散在的矿化结节、ALP 活性升高和成骨标志物的基因表达上调。在供体兔的皮下袋中植入后,通过组织学检查证实了工程化骨膜的体内成骨能力。此外,当将工程化骨膜包裹在下颌骨骨折间隙周围时,我们观察到骨折部位的骨愈合得到改善,纤维组织减少。
成骨预分化 BMSC 片可以作为无支架 TEP 促进骨再生。因此,我们的研究为增强临床环境中的骨再生提供了一种有前途的策略。