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The effect of glycosaminoglycan content on polyethylenimine-based gene delivery within three-dimensional collagen-GAG scaffolds

机译:糖胺聚糖含量对三维胶原-GAG支架内基于聚乙烯亚胺的基因传递的影响

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摘要

The design of biomaterials for increasingly complex tissue engineering applications often requires exogenous presentation of biomolecular signals. Integration of gene delivery vectors with a biomaterial scaffold offers the potential to bypass the use of expensive and relatively inefficient growth factor supplementation strategies to augment cell behavior. However, integration of cationic polymer based gene delivery vectors within three-dimensional biomaterials, particularly matrices which can carry significant surface charge, remains poorly explored. We examined the potential of polyethylenimine (PEI) as a gene delivery vector for three-dimensional collagen-glycosaminoglycan (CG) scaffolds under development for tendon repair. While acetylated versions of PEI have demonstrated improved transfection efficiency in 2D culture assays, we investigated translation of this effect to a 3D biomaterial that contains significant electrostatic charge. A reporter gene was used to examine the impact of polymer modification, polymer:DNA ratio, and the degree of sulfation of the biomaterial microenvironment on gene delivery in vitro. We observed highest transgene expression in acetylated and unmodified PEI at distinct polymer:DNA ratios; notably, the enhancement often seen in two-dimensional culture for acetylated PEI did not fully translate to three-dimensional scaffolds. We also found highly sulfated heparin-based CG scaffolds showed enhanced initial luciferase expression but not prolonged activity. While PEI constructs significantly reduced tenocyte metabolic health during the period of transfection, heparin-based CG scaffolds showed the greatest recovery in tenocyte metabolic health over the full 2 week culture. These results suggest that the electrostatic environment of three-dimensional biomaterials may be an important design criterion for cationic polymer-based gene delivery.
机译:用于日益复杂的组织工程应用的生物材料的设计通常需要生物分子信号的外源表现。基因递送载体与生物材料支架的整合提供了绕过使用昂贵且相对无效的生长因子补充策略以增强细胞行为的潜力。但是,在三维生物材料中,特别是在可以携带大量表面电荷的基质中,基于阳离子聚合物的基因传递载体的整合仍然缺乏探索。我们检查了聚乙烯亚胺(PEI)作为三维胶原蛋白-糖胺聚糖(CG)支架发展中的肌腱修复基因传递载体的潜力。虽然PEI的乙酰化形式在2D培养分析中显示出提高的转染效率,但我们研究了这种作用向包含大量静电荷的3D生物材料的转化。使用报告基因检测聚合物修饰,聚合物:DNA比率以及生物材料微环境的硫酸化程度对体外基因传递的影响。我们观察到在不同的聚合物:DNA比下,乙酰化和未修饰的PEI中最高的转基因表达。值得注意的是,在二维培养中经常看到的乙酰化PEI的增强不能完全转化为三维支架。我们还发现高度硫酸化的肝素基CG支架显示增强的初始荧光素酶表达,但没有延长的活性。虽然PEI构建体在转染期间显着降低了肌腱细胞代谢健康,但基于肝素的CG支架在整个2周的培养过程中,肌腱细胞代谢健康的恢复最大。这些结果表明,三维生物材料的静电环境可能是基于阳离子聚合物的基因传递的重要设计标准。

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