...
首页> 外文期刊>BMC Biotechnology >Simultaneous silencing of multiple RB and p53 pathway members induces cell cycle reentry in intact human pancreatic islets
【24h】

Simultaneous silencing of multiple RB and p53 pathway members induces cell cycle reentry in intact human pancreatic islets

机译:同时沉默多个RB和p53途径成员诱导完整的人类胰岛细胞周期再进入。

获取原文

摘要

Background Human pancreatic islet structure poses challenges to investigations that require specific modulation of gene expression. Yet dissociation of islets into individual cells destroys cellular interactions important to islet physiology. Approaches that improve transient targeting of gene expression in intact human islets are needed in order to effectively perturb intracellular pathways to achieve biological effects in the most relevant tissue contexts. Results Electroporation of intact human cadaveric islets resulted in robust and specific suppression of gene expression. Two genes were simultaneously suppressed by 80% from baseline levels. When multiple (up to 5) genes were simultaneously targeted, effective suppression of 3 of 5 genes occurred. Enzymatic pretreatment of islets was not required. Simultaneous targeting of RB and p53 pathway members resulted in cell cycle reentry as measured by EDU incorporation in 10% of islet nuclei. Conclusions At least three genes can be effectively suppressed simultaneously in cultured intact human pancreatic islets without disruption of islet architecture or overt alterations in function. This enabled the effective modulation of two central growth control pathways resulting in the phenotypic outcome of cell cycle reentry in postmitotic islet cells. Transient exposure to multiple siRNAs is an effective approach to modify islets for study with the potential to aid clinical applications.
机译:背景技术人胰岛结构对需要基因表达的特定调节的研究提出了挑战。然而,将胰岛分解成单个细胞破坏了对胰岛生理学很重要的细胞相互作用。为了有效地扰动细胞内途径在最相关的组织环境中获得生物学效应,需要改善完整人类胰岛中基因表达的瞬时靶向的方法。结果完整的人尸体胰岛的电穿孔导致基因表达的强烈和特异性抑制。与基线水平相比,两个基因同时被抑制了80%。当同时靶向多个(多达5个)基因时,有效抑制了5个基因中的3个。不需要对胰岛进行酶预处理。 RB和p53途径成员的同时靶向导致细胞周期再进入,如通过在10%的胰岛核中掺入EDU所测量的。结论在培养的完整人胰岛中,可以同时有效抑制至少三个基因,而不会破坏胰岛的结构或功能的明显改变。这使得能够有效调节两个中央生长控制途径,导致有丝分裂后胰岛细胞中细胞周期再进入的表型结果。短暂暴露于多种siRNA是修饰胰岛以进行研究的有效方法,具有帮助临床应用的潜力。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号