Hollow pollen grains as scaffolding building blocks in bone tissue engineering

S. Zakhireh, J. Barar, Y. Beygi-Khosrowshahi, A. Barzegari, Y. Omidi, K. Adibkia
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引用次数: 1

Abstract

Introduction: The current study, for the first time, suggests nature-made pollen grains (PGs) of Pistacia vera L. as a potential candidate for using as scaffolding building blocks with encapsulation capability of bioactive compounds, such as bone morphogenetic protein 4 (BMP4). Methods: A modified method using KOH (5%, 25ºC) was developed to produce nonallergic hollow pollen grains (HPGs), confirmed by energy dispersive X-ray (EDX) analysis, field emission scanning electron microscopy (FESEM), and DNA and protein staining techniques. The in-vitro study was conducted on human adipose-derived mesenchymal stem cells (hAD-MSCs) to investigate the applicability of HPGs as bone scaffolding building blocks. Cytocompability was evaluated by FESEM, MTT assay, and gene expression analysis of apoptotic markers (BAX and BCL2). The osteoconductive potential of HPGs was assessed by alkaline phosphatase (ALP) activity measurement and gene expression analysis of osteogenic markers (RUNX2 and osteocalcin). Results: Findings demonstrated that HPGs can be considered as biocompatible compounds increasing the metabolic activities of the cells. Further, the bioactive nature of HPGs resulted in suitable cellular adhesion properties, required for a potent scaffold. The investigation of apoptotic gene expression indicated a reduced BAX/BCL2 ratio reflecting the protective effect of HPGs on hAD-MSCs. The increased ALP activity and expression of osteogenic genes displayed the osteoconductive property of HPGs. Moreover, the incorporation of BMP4 in HPGs initiated a synergistic effect on osteoblast maturation. Conclusion: Owing to the unique compositional and surface nanotopographical features of the Pistacia vera L. HPG, this microscale architecture provides a favorable microenvironment for the bottom-up remodeling of bone.
空心花粉粒在骨组织工程中的支架结构
本研究首次提出,天然合成的黄连木花粉粒(PGs)可作为骨架构建材料,具有包封骨形态发生蛋白4 (BMP4)等生物活性物质的潜力。方法:采用改良的KOH(5%, 25ºC)法制备无变应性空心花粉粒(HPGs),经x射线能谱分析(EDX)、场发射扫描电镜(FESEM)、DNA和蛋白质染色技术证实。体外研究以人脂肪源性间充质干细胞(hAD-MSCs)为实验对象,探讨了HPGs作为骨支架构建块的适用性。通过FESEM、MTT和凋亡标志物(BAX和BCL2)基因表达分析评估细胞相容性。采用碱性磷酸酶(ALP)活性测定和成骨标志物(RUNX2、骨钙素)基因表达分析,评价HPGs的骨传导潜能。结果:发现HPGs可以被认为是生物相容性化合物,增加细胞的代谢活性。此外,HPGs的生物活性导致了合适的细胞粘附特性,这是一种有效支架所必需的。凋亡基因表达的研究表明,降低BAX/BCL2比值反映了HPGs对hAD-MSCs的保护作用。ALP活性和成骨基因表达的增加显示了HPGs的成骨性。此外,BMP4在HPGs中的掺入对成骨细胞成熟具有协同作用。结论:由于Pistacia vera L. HPG独特的组成和表面纳米形貌特征,这种微尺度结构为自下而上的骨重塑提供了良好的微环境。
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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