首页> 美国卫生研究院文献>Tissue Engineering. Part A >Hydrogel Microsphere Encapsulation of a Cell-Based Gene Therapy System Increases Cell Survival of Injected Cells Transgene Expression and Bone Volume in a Model of Heterotopic Ossification
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Hydrogel Microsphere Encapsulation of a Cell-Based Gene Therapy System Increases Cell Survival of Injected Cells Transgene Expression and Bone Volume in a Model of Heterotopic Ossification

机译:基于细胞的基因治疗系统的水凝胶微球封装增加了异位骨化模型中注射细胞的细胞存活率转基因表达和骨体积

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摘要

Bone morphogenetic proteins (BMPs) are well known for their osteoinductive activity, yet harnessing this capacity remains a high-priority research focus. We present a novel technology that delivers high BMP-2 levels at targeted locations for rapid endochondral bone formation, enhancing our preexisting cell-based gene therapy system by microencapsulating adenovirus-transduced cells in nondegradable poly(ethylene glycol) diacrylate (PEGDA) hydrogels before intramuscular delivery. This study evaluates the in vitro and in vivo viability, gene expression, and bone formation from transgenic fibroblasts encapsulated in PEGDA microspheres. Fluorescent viability and cytotoxicity assays demonstrated >95% viability in microencapsulated cells. ELISA and alkaline phosphatase assays established that BMP-2 secretion and specific activity from microencapsulated AdBMP2-transduced fibroblasts were not statistically different from monolayer. Longitudinal transgene expression studies of AdDsRed-transduced fibroblasts, followed through live animal optical fluorescent imaging, showed that microencapsulated cells expressed longer than unencapsulated cells. When comparable numbers of microencapsulated AdBMP2-transduced cells were intramuscularly injected into mice, microcomputed tomography evaluation demonstrated that the resultant heterotopic bone formation was approximately twice the volume of unencapsulated cells. The data suggest that microencapsulation protects cells and prolongs and spatially distributes transgene expression. Thus, incorporation of PEGDA hydrogels significantly advances current gene therapy bone repair approaches.
机译:骨形态发生蛋白(BMP)以其骨诱导活性而闻名,但利用这种能力仍然是高度优先的研究重点。我们提出了一种新技术,该技术可在目标位置提供高BMP-2水平以快速形成软骨内骨,通过在肌内注射前将腺病毒转导的细胞微囊化在不可降解的聚乙二醇二丙烯酸酯(PEGDA)水凝胶中,从而增强我们现有的基于细胞的基因治疗系统。交货。这项研究评估了封装在PEGDA微球中的转基因成纤维细胞的体外和体内生存力,基因表达和骨形成。荧光活力和细胞毒性分析表明,微囊化细胞的活力大于95%。 ELISA和碱性磷酸酶测定法确定,微囊化AdBMP2转导的成纤维细胞的BMP-2分泌和比活性与单层无统计学差异。 AdDsRed转导的成纤维细胞的纵向转基因表达研究,然后通过活体动物光学荧光成像,显示微囊化的细胞比未囊化的细胞表达更长。当将相当数量的微囊化AdBMP2转导的细胞肌肉内注射到小鼠中时,微计算机断层扫描评估表明,所形成的异位骨形成大约是未囊化细胞体积的两倍。数据表明微囊化可以保护细胞并延长转基因表达并在空间上分布。因此,掺入PEGDA水凝胶显着推进了当前的基因治疗骨修复方法。

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