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3D Human Periodontal Stem Cells and Endothelial Cells Promote Bone Development in Bovine Pericardium-Based Tissue Biomaterial

机译:3D人类牙周干细胞和内皮细胞促进基于牛心包的组织生物材料中的骨发育。

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摘要

Bone defects repair represents a public and urgent problem in clinical practice, in fact, every year, more than two million patients required new treatments for bone injuries. Today a complete vascularization is strategic in bone formation, representing a new frontier for clinical application. Aim of this research has been developed a three-dimensional (3D) coculture platform using a bovine pericardium collagen membrane (BioR) loaded with human periodontal ligament stem cells (hPDLSCs) and endothelial differentiated cells from hPDLSCs (E-hPDLSCs) able to undergo toward osteoangiogenesis differentiation process. First, we have characterized at confocal laser scanning microscopy (CLSM) level the E-hPDLSCs phenotype profile, through CD31 and CD34 markers expression and the ability to tube vessel formation. Real Time-Polimerase Chain Reaction (RT-PCR) and western blotting analyses revealed the upregulation of Runt-related transcription factor 2 (RUNX2), Collagen 1A1 (COL1A1), Vascular Endothelial Growth Factor-A (VEGF-A) genes and proteins in the living construct composed by hPDLSCs + E-hPDSCs/BioR. Human PDLSCs + E-hPDLSCs/BioR construct showed also an enhacement of de novo synthesis of osteocalcin. Given that, the extracellular-signal-regulated kinase (ERK)/mitogen activated protein kinase (MAPK) transduction signaling was involved in the osteogenesis and angiogenesis process, the ERK1/2 protein level at biochemical level, in our experimental model, has been investigated. Our results evidenced an upregulation of ERK1/2 proteins level born in the living construct. In conclusion, we believe that the use of the hPDLSCs and E-hPDLSCs coculture togheter with BioR as substrate, could represent an efficient model able to activate through ERK1/2 signaling pathway the osteoangiogenesis process, and then representing a new potential engineered platform for surgeons during the repair and the healing of bone defects.
机译:骨缺损的修复是临床实践中的一个紧迫的公共问题,实际上,每年有超过200万患者需要针对骨损伤的新疗法。如今,完全的血管形成在骨形成中具有战略意义,代表了临床应用的新领域。这项研究的目的是开发一个三维(3D)共培养平台,该平台使用牛心包胶原膜(BioR)装载人牙周膜干细胞(hPDLSCs)和来自hPDLSCs(E-hPDLSCs)的内皮分化细胞骨血管生成分化过程。首先,我们通过共聚焦激光扫描显微镜(CLSM)表征了E-hPDLSCs表型概况,通过CD31和CD34标记物表达以及管管形成的能力。实时聚合酶链反应(RT-PCR)和Western印迹分析显示Runt相关转录因子2(RUNX2),胶原1A1(COL1A1),血管内皮生长因子-A(VEGF-A)基因和蛋白质的上调由hPDLSCs + E-hPDSCs / BioR组成的活构建体。人PDLSCs + E-hPDLSCs / BioR构建体也显示了骨钙素从头合成的增强。鉴于细胞外信号调节激酶(ERK)/丝裂原活化蛋白激酶(MAPK)的转导信号参与了成骨和血管生成过程,在我们的实验模型中,对生化水平的ERK1 / 2蛋白水平进行了研究。 。我们的结果证明了在活构建物中出生的ERK1 / 2蛋白水平的上调。总之,我们认为,以BioR为底物的hPDLSCs和E-hPDLSCs共培养Togheter的使用,可以代表一种能够通过ERK1 / 2信号通路激活骨血管生成过程的有效模型,然后为外科医生提供一个新的潜在工程化平台在骨缺损的修复和愈合过程中。

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