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植物转化载体中 CaMV 35S 启动子区域与转基因植物中病毒基因 VI 重叠可能产生的后果。

Possible consequences of the overlap between the CaMV 35S promoter regions in plant transformation vectors used and the viral gene VI in transgenic plants.

机构信息

The European Food Safety Authority (EFSA), Parma, Italy.

出版信息

GM Crops Food. 2012 Oct-Dec;3(4):296-300. doi: 10.4161/gmcr.21406. Epub 2012 Aug 15.

DOI:10.4161/gmcr.21406
PMID:22892689
Abstract

Multiple variants of the Cauliflower mosaic virus 35S promoter (P35S) are used to drive the expression of transgenes in genetically modified plants, for both research purposes and commercial applications. The genetic organization of the densely packed genome of this virus results in sequence overlap between P35S and viral gene VI, encoding the multifunctional P6 protein. The present paper investigates whether introduction of P35S variants by genetic transformation is likely to result in the expression of functional domains of the P6 protein and in potential impacts in transgenic plants. A bioinformatic analysis was performed to assess the safety for human and animal health of putative translation products of gene VI overlapping P35S. No relevant similarity was identified between the putative peptides and known allergens and toxins, using different databases. From a literature study it became clear that long variants of the P35S do contain an open reading frame, when expressed, might result in unintended phenotypic changes. A flowchart is proposed to evaluate possible unintended effects in plant transformants, based on the DNA sequence actually introduced and on the plant phenotype, taking into account the known effects of ectopically expressed P6 domains in model plants.

摘要

多个 Cauliflower mosaic virus 35S 启动子(P35S)变体被用于驱动转基因植物中转基因的表达,既用于研究目的也用于商业应用。该病毒密集排列的基因组的遗传结构导致 P35S 与编码多功能 P6 蛋白的病毒基因 VI 之间存在序列重叠。本文研究了通过遗传转化引入 P35S 变体是否可能导致 P6 蛋白的功能结构域的表达,并对转基因植物产生潜在影响。通过生物信息学分析来评估基因 VI 与 P35S 重叠的潜在翻译产物对人类和动物健康的安全性。使用不同的数据库,没有发现 P6 蛋白与已知过敏原和毒素之间存在相关的相似性。从文献研究中可以清楚地看出,长变体的 P35S 确实包含一个开放阅读框,当表达时,可能导致非预期的表型变化。提出了一个流程图,根据实际引入的 DNA 序列和植物表型,考虑到模型植物中外源表达的 P6 结构域的已知效应,来评估植物转化体中可能存在的非预期效应。

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