首页> 外文期刊>Journal of Controlled Release: Official Journal of the Controlled Release Society >Balancing cell migration with matrix degradation enhances gene delivery to cells cultured three-dimensionally within hydrogels
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Balancing cell migration with matrix degradation enhances gene delivery to cells cultured three-dimensionally within hydrogels

机译:通过基质降解平衡细胞迁移,可增强基因在水凝胶中三维培养细胞的传递

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In regenerative medicine, hydrogels are employed to fill defects and support the infiltration of cells that can ultimately regenerate tissue. Gene delivery within hydrogels targeting infiltrating cells has the potential to promote tissue formation, but the delivery efficiency of non-viral vectors within hydrogels is low, hindering their applicability in tissue regeneration. To improve their functionality, we have conducted a mechanistic study to investigate the contribution of cell migration and matrix degradation on gene delivery. In this report, lipoplexes were entrapped within hydrogels based on poly(ethylene glycol) (PEG) crosslinked with peptides containing matrix metalloproteinase degradable sequences. The mesh size of these hydrogels is substantially less than the size of the entrapped lipoplexes, which can function to retain vectors. Cell migration and transfection were simultaneously measured within hydrogels with varying density of cell adhesion sites (Arg-Gly-Asp peptides) and solids content. Increasing RGD density increased expression levels up to 100-fold, while greater solids content sustained expression levels for 16. days. Increasing RGD density and decreasing solids content increased cell migration, which indicates expression levels increase with increased cell migration. Initially exposing cells to vector resulted in transient expression that declined after 2. days, verifying the requirement of migration to sustain expression. Transfected cells were predominantly located within the population of migrating cells for hydrogels that supported cell migration. Although the small mesh size retained at least 70% of the lipoplexes in the absence of cells after 32. days, the presence of cells decreased retention to 10% after 16. days. These results indicate that vectors retained within hydrogels contact migrating cells, and that persistent cell migration can maintain elevated expression levels. Thus, matrix degradation and cell migration are fundamental design parameters for maximizing gene delivery within hydrogels.
机译:在再生医学中,水凝胶可用于填充缺损并支持最终可再生组织的细胞浸润。靶向浸润细胞的水凝胶内的基因传递具有促进组织形成的潜力,但是水凝胶内非病毒载体的传递效率低,从而阻碍了其在组织再生中的适用性。为了改善其功能,我们进行了一项机理研究,以研究细胞迁移和基质降解对基因传递的贡献。在本报告中,脂蛋白被困在基于聚乙二醇(PEG)的水凝胶中,该聚乙二醇与含有基质金属蛋白酶可降解序列的肽交联。这些水凝胶的筛孔尺寸基本上小于被包埋的脂质复合物的尺寸,其可以起到保持载体的作用。在水凝胶内同时测量细胞迁移和转染,并改变细胞粘附位点的密度(Arg-Gly-Asp肽)和固体含量。 RGD密度的增加将表达水平提高了100倍,而更高的固体含量使表达水平持续了16天。 RGD密度增加和固体含量减少会增加细胞迁移,这表明表达水平随细胞迁移的增加而增加。最初将细胞暴露于载体会导致瞬时表达,该表达在2天后下降,这证明了迁移才能维持表达。转染的细胞主要位于支持细胞迁移的水凝胶的迁移细胞群体中。尽管在32天后不存在细胞的情况下,较小的筛孔尺寸保留了至少70%的脂质复合物,但在16天后,细胞的存在将保留率降低至10%。这些结果表明保留在水凝胶中的载体与迁移细胞接触,并且持续的细胞迁移可以维持升高的表达水平。因此,基质降解和细胞迁移是使水凝胶内基因传递最大化的基本设计参数。

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