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利用基于 piggyBac 转座酶的递送系统在哺乳动物细胞中进行有效的靶向基因敲低。

Effective Targeted Gene Knockdown in Mammalian Cells Using the piggyBac Transposase-based Delivery System.

机构信息

Department of Anatomy, Biochemistry, and Physiology Institute for Biogenesis Research, University of Hawaii, Honolulu, Hawaii, USA.

出版信息

Mol Ther Nucleic Acids. 2013 Dec 10;2(12):e137. doi: 10.1038/mtna.2013.61.

Abstract

Nonviral gene delivery systems are rapidly becoming a desirable and applicable method to overexpress genes in various types of cells. We have recently developed a piggyBac transposase-based, helper-independent and self-inactivating delivery system (pmGENIE-3) capable of high-efficiency transfection of mammalian cells including human cells. In the following study, we have assessed the potential of this delivery system to drive the expression of short hairpin RNAs to knock down genes in human cells. Two independent pmGENIE-3 vectors were developed to specifically target knockdown of an endogenous gene, telomerase reverse transcriptase (TERT), in telomerase-positive human immortalized cell lines. As compared with a transposase-deficient vector, pmGENIE-3 showed significantly improved short-term transfection efficiency (4-fold enhancement, 48 hours posttransfection) and long-term integration efficiency (5-fold enhancement) following antibiotic selection. We detected a significant reduction of both TERT expression and telomerase activity in both HEK293 and MCF-7 breast carcinoma cells transfected with two pmGENIE-3 construct targeting distinct regions of TERT. Importantly, this knockdown of expression was sufficient to abrogate telomerase function since telomeres were significantly shortened (3-4 Kb, P < 0.001) in both TERT-targeted cell lines following antibiotic selection of stable integrants. Together, these data show the capacity of the piggyBac nonviral delivery system to stably knockdown gene expression in mammalian cells and indicate the potential to develop novel tumor-targeting therapies.Molecular Therapy-Nucleic Acids (2013) 2, e137; doi:10.1038/mtna.2013.61; published online 3 December 2013.

摘要

非病毒基因传递系统正迅速成为在各种类型细胞中过表达基因的理想和适用方法。我们最近开发了一种基于 piggyBac 转座酶的、无需辅助和自我失活的传递系统(pmGENIE-3),能够高效转染包括人细胞在内的哺乳动物细胞。在以下研究中,我们评估了该传递系统将短发夹 RNA 导入人细胞以敲低基因的潜力。开发了两个独立的 pmGENIE-3 载体,以特异性靶向端粒酶逆转录酶(TERT)的内源性基因敲低,该基因存在于端粒酶阳性的人永生化细胞系中。与转座酶缺陷型载体相比,pmGENIE-3 在抗生素选择后显示出显著提高的短期转染效率(4 倍增强,转染后 48 小时)和长期整合效率(5 倍增强)。我们在转染了靶向 TERT 不同区域的两个 pmGENIE-3 构建体的 HEK293 和 MCF-7 乳腺癌细胞中检测到 TERT 表达和端粒酶活性的显著降低。重要的是,这种表达的敲低足以使端粒酶功能丧失,因为在抗生素选择稳定整合子后,两个 TERT 靶向细胞系中的端粒均显著缩短(3-4 Kb,P < 0.001)。总之,这些数据表明 piggyBac 非病毒传递系统有能力在哺乳动物细胞中稳定敲低基因表达,并表明有潜力开发新的肿瘤靶向治疗方法。分子治疗-核酸(2013)2,e137;doi:10.1038/mtna.2013.61;在线发布 2013 年 12 月 3 日。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3b0c/3894583/ba47f0e52052/mtna201361f1.jpg

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