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利用促红细胞生成素增强子和氧依赖性降解结构域进行缺氧特异性基因表达的转录和翻译后调控系统。

Transcriptional and post-translational regulatory system for hypoxia specific gene expression using the erythropoietin enhancer and the oxygen-dependent degradation domain.

作者信息

Kim Hyun Ah, Kim Kyunghwa, Kim Sung Wan, Lee Minhyung

机构信息

Department of Bioengineering, College of Engineering, Hanyang University, 17 Haengdang-dong, Seongdong-gu, Seoul 133-791, South Korea.

出版信息

J Control Release. 2007 Aug 28;121(3):218-24. doi: 10.1016/j.jconrel.2007.05.036. Epub 2007 Jun 12.

DOI:10.1016/j.jconrel.2007.05.036
PMID:17628167
Abstract

Gene therapy with angiogenic factors is a promising strategy for the treatment of ischemic diseases. However, unregulated expression of an angiogenic factor may induce pathological angiogenesis. In this study, a hypoxia specific gene expression plasmid, pSV-Luc-ODD, was constructed with the oxygen-dependent degradation (ODD) domain for rapid degradation of a target protein under normoxia. In the transfection assay, luciferase activity in the pSV-Luc-ODD transfected cells was much lower under normoxia than that under hypoxia. However, the luciferase mRNA levels under hypoxia and normoxia were not significantly different. Therefore, decrease of luciferase activity under normoxia is not due to pre-translational events such as change of transcription rate or mRNA stability, but to post-translational degradation. For more hypoxia specific gene expression, pEpo-SV-Luc-ODD was constructed with the erythropoietin (Epo) enhancer and the ODD domain. pEpo-SV-Luc-ODD showed more than 1000 times increase of gene expression under hypoxia in Neuro2A cells, compared to normoxia. In addition, reoxygenation studies after hypoxia incubation showed that gene expression was decreased in response to increased oxygen concentration. This highly hypoxia specific gene expression system will be useful for development of targeting gene therapy for ischemic diseases.

摘要

利用血管生成因子进行基因治疗是治疗缺血性疾病的一种很有前景的策略。然而,血管生成因子的无节制表达可能会诱导病理性血管生成。在本研究中,构建了一种低氧特异性基因表达质粒pSV-Luc-ODD,其带有氧依赖性降解(ODD)结构域,用于在常氧条件下快速降解靶蛋白。在转染实验中,pSV-Luc-ODD转染细胞在常氧条件下的荧光素酶活性远低于低氧条件下的活性。然而,低氧和常氧条件下荧光素酶mRNA水平没有显著差异。因此,常氧条件下荧光素酶活性的降低不是由于转录速率或mRNA稳定性改变等翻译前事件,而是由于翻译后降解。为了实现更多的低氧特异性基因表达,构建了带有促红细胞生成素(Epo)增强子和ODD结构域的pEpo-SV-Luc-ODD。与常氧相比,pEpo-SV-Luc-ODD在Neuro2A细胞的低氧条件下基因表达增加了1000倍以上。此外,低氧孵育后的复氧研究表明,基因表达会随着氧浓度的增加而降低。这种高度低氧特异性的基因表达系统将有助于开发针对缺血性疾病的靶向基因治疗。

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