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Preparation and Characterization of Gelatin-Based Mucoadhesive Nanocomposites as Intravesical Gene Delivery Scaffolds

机译:明胶基黏膜粘着剂纳米复合物的制备及其膀胱内基因传递支架的表征

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摘要

This study aimed to develop optimal gelatin-based mucoadhesive nanocomposites as scaffolds for intravesical gene delivery to the urothelium. Hydrogels were prepared by chemically crosslinking gelatin A or B with glutaraldehyde. Physicochemical and delivery properties including hydration ratio, viscosity, size, yield, thermosensitivity, and enzymatic degradation were studied, and scanning electron microscopy (SEM) was carried out. The optimal hydrogels (H), composed of 15% gelatin A175, displayed an 81.5% yield rate, 87.1% hydration ratio, 42.9 Pa·s viscosity, and 125.8 nm particle size. The crosslinking density of the hydrogels was determined by performing pronase degradation and ninhydrin assays. In vitro lentivirus (LV) release studies involving p24 capsid protein analysis in 293T cells revealed that hydrogels containing lentivirus (H-LV) had a higher cumulative release than that observed for LV alone (3.7-, 2.3-, and 2.3-fold at days 1, 3, and 5, resp.). Lentivirus from lentivector constructed green fluorescent protein (GFP) was then entrapped in hydrogels (H-LV-GFP). H-LV-GFP showed enhanced gene delivery in AY-27 cells in vitro and to rat urothelium by intravesical instillation in vivo. Cystometrogram showed mucoadhesive H-LV reduced peak micturition and threshold pressure and increased bladder compliance. In this study, we successfully developed first optimal gelatin-based mucoadhesive nanocomposites as intravesical gene delivery scaffolds.
机译:这项研究旨在开发最佳的基于明胶的粘膜粘附纳米复合材料,作为将膀胱内基因递送至尿路上皮的支架。通过将明胶A或B与戊二醛化学交联来制备水凝胶。研究了包括水合比,粘度,尺寸,收率,热敏性和酶促降解在内的理化和传递特性,并进行了扫描电子显微镜(SEM)。最佳水凝胶(H)由15%的明胶A175组成,具有81.5%的收率,87.1%的水合比,42.9 Pa·s的粘度和125.8 nm的粒径。水凝胶的交联密度通过进行链霉蛋白酶降解和茚三酮测定来确定。涉及293T细胞中p24衣壳蛋白分析的体外慢病毒(LV)释放研究表明,含有慢病毒(H-LV)的水凝胶的累积释放量比单独使用LV时观察到的高(3.7、2.3和2.3倍) 1、3和5)。然后将来自慢病毒载体构建的绿色荧光蛋白(GFP)的慢病毒截留在水凝胶(H-LV-GFP)中。 H-LV-GFP显示体外AY-27细胞和体内膀胱灌注向大鼠尿路上皮的基因传递增强。膀胱造影图显示粘膜粘附性H-LV降低了排尿峰值和阈值压力,并增加了膀胱顺应性。在这项研究中,我们成功开发了第一个最佳的基于明胶的粘膜粘附纳米复合材料,作为膀胱内基因传递支架。

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