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基因电穿孔临床试验。

Gene electrotransfer clinical trials.

作者信息

Heller Richard, Heller Loree C

机构信息

Frank Reidy Research Center for Bioelectrics, Old Dominion University, Norfolk, VA, USA; School of Medical Diagnostics and Translational Sciences, College of Health Sciences, Old Dominion University, Norfolk, VA, USA.

出版信息

Adv Genet. 2015;89:235-262. doi: 10.1016/bs.adgen.2014.10.006. Epub 2014 Dec 4.

Abstract

Plasmid or non-viral gene therapy offers an alternative to classic viral gene delivery that negates the need for a biological vector. In this case, delivery is enhanced by a variety of approaches including lipid or polymer conjugation, particle-mediated delivery, hydrodynamic delivery, ultrasound or electroporation. Electroporation was originally used as a laboratory tool to deliver DNA to bacterial and mammalian cells in culture. Electrode development allowed this technique to be modified for in vivo use. After preclinical therapeutic studies, clinical delivery of cell impermeant chemotherapeutic agents progressed to clinical delivery of plasmid DNA. One huge benefit of this delivery technique is its malleability. The pulse protocol used for plasmid delivery can be fine-tuned to control the levels and duration of subsequent transgene expression. This fine-tuning allows transgene expression to be tailored to each therapeutic application. Effective and appropriate expression induces the desired clinical response that is a critical component for any gene therapy. This chapter focuses on clinical trials using in vivo electroporation or electrotransfer as a plasmid delivery method. The first clinical trial was initiated in 2004, and now more than fifty trials use electric fields for gene delivery. Safety and tolerability has been demonstrated by several groups, and early clinical efficacy results are promising in both cancer therapeutic and infectious disease vaccine applications.

摘要

质粒或非病毒基因治疗为经典病毒基因递送提供了一种替代方案,无需生物载体。在这种情况下,通过多种方法可增强递送效果,包括脂质或聚合物偶联、颗粒介导递送、流体动力学递送、超声或电穿孔。电穿孔最初用作实验室工具,将DNA递送至培养中的细菌和哺乳动物细胞。电极的发展使该技术得以改进用于体内。经过临床前治疗研究后,细胞不透性化疗药物的临床递送进展到质粒DNA的临床递送。这种递送技术的一个巨大优势是其可塑性。用于质粒递送的脉冲方案可以微调,以控制随后转基因表达的水平和持续时间。这种微调使转基因表达能够针对每种治疗应用进行定制。有效且适当的表达诱导出所需的临床反应,这是任何基因治疗的关键组成部分。本章重点介绍使用体内电穿孔或电转染作为质粒递送方法的临床试验。首例临床试验于2004年启动,现在有五十多项试验使用电场进行基因递送。几个研究小组已证明了安全性和耐受性,早期临床疗效结果在癌症治疗和传染病疫苗应用方面都很有前景。

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