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pNNS-Conjugated Chitosan Mediated IGF-1 and miR-140 Overexpression in Articular Chondrocytes Improves Cartilage Repair

机译:PNNS-缀合的壳聚糖介导的IGF-1和MIR-140在关节软骨细胞中的过表达改善了软骨修复

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摘要

The aim of the present study was to investigate the effects of phosphorylatable nucleus localization signal linked nucleic kinase substrate short peptide (NNSp)-conjugated chitosan (NNSp-CS) mediated miR-140 and IGF-1 in both rabbit chondrocytes and cartilage defects model. NNSp-CS was combined with pBudCE4.1-IGF-1, pBudCE4.1-miR-140, and negative control pBudCE4.1 to form pDNA/NNSp-CS complexes. Then these complexes were transfected into chondrocytes or injected intra-articularly into the knee joints. High levels of IGF-1 and miR-140 expression were detected both in vitro and in vivo. Compared with pBudCE4.1 group, in vitro, the transgenic groups significantly promoted chondrocyte proliferation, increased glycosaminoglycan (GAG) synthesis, and ACAN, COL2A1, and TIMP-1 levels, and reduced the levels of nitric oxide (NO), MMP-13, and ADAMTS-5. In vivo, the exogenous genes enhanced COL2A1, ACAN, and TIMP-1 expression in cartilage and reduced cartilage Mankin score and the contents of NO, IL-1β, TNF-α, and GAG contents in synovial fluid of rabbits, MMP-13, ADAMTS-5, COL1A2, and COL10A1 levels in cartilage. Double gene combination showed better results than single gene. This study indicate that NNSp-CS is a better gene delivery vehicle in gene therapy for cartilage defects and that miR-140 combination IGF-1 transfection has better biologic effects on cartilage defects.
机译:本研究的目的是调查磷酸化核定位信号的影响,连接核酸激酶底物短肽(NNSp)缀合的脱乙酰壳多糖(NNSp-CS)在两种兔子软骨细胞和软骨缺损模型介导的miR-140和IGF-1。 NNSP-CS与PBUDCE4.1-IGF-1,PBUDCE4.1-MIR-140和阴性对照PBUDCE4.1合并,形成PDNA / NNSP-CS复合物。然后将这些复合物转染到软骨细胞中或者关节内注射到膝关节中。在体外和体内检测高水平的IGF-1和miR-140表达。与PBUDCE4.1组相比,在体外,转基因组显着促进了软骨细胞增殖,增加了糖胺聚糖(GAG)合成,ACAN,COL2A1和TIMP-1水平,并降低了一氧化氮(NO),MMP-13的水平和Adamts-5。在体内,外源基因增强COL2A1,ACAN,和TIMP-1的表达在软骨和减少的软骨Mankin评分和NO,IL-1β,TNF-α,和GAG兔滑液内容的内容,MMP-13,软骨中的Adamts-5,Col1a2和Col10a1水平。双基因组合显示出比单一基因更好的结果。该研究表明,NNSP-CS是用于软骨缺陷的基因治疗中的更好的基因递送载体,并且miR-140组合IGF-1转染对软骨缺陷具有更好的生物学作用。

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