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首页> 外文期刊>Gene: An International Journal Focusing on Gene Cloning and Gene Structure and Function >Demonstration of horizontal gene transfer from genetically engineered Thermosynechococcus elongatus BP1 to wild-type E. coli DH5 alpha
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Demonstration of horizontal gene transfer from genetically engineered Thermosynechococcus elongatus BP1 to wild-type E. coli DH5 alpha

机译:从遗传工程热循环细胞Elongatus BP1到野生型大肠杆菌DH5α的水平基因转移的示范

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摘要

Synthetic biology with genetically engineered (GE) cyanobacteria has the potential to produce valuable products such as biofuels. However, it is also essential to assess the potential risks of synthetic biology technology before it can be widely used. In order to address key concerns posed by the application of synthetic biology to microorganisms, studies were designed to monitor the horizontal transfer of engineered genes from GE cyanobacteria Thermosynechococcus elongatus BP1 to Escherichia coli through co-incubation. The results of these experiments demonstrated that the genetically engineered DNA construct containing alcohol producing genes and kanamycin resistance can be horizontally transferred from GE T. elongatus BP1 to wild-type E. coli following two days of liquid co-culturing. The rapid and facile transfer of foreign genes, which include antibiotic resistance, between bacterial communities signifies the need to continue to deepen our understanding of the process of horizontal gene transfer, chromosomal integration as well as further biosafety-oriented research efforts. In the era of synthetic biology, the natural microbial process for sharing genetic material will also significantly impact risk assessments, containment approaches and further policy development.
机译:遗传工程化(GE)蓝细菌的合成生物学有可能产生有价值的产品,如生物燃料。但是,在广泛使用之前,评估合成生物学技术的潜在风险也是必要的。为了解决综合生物学应用于微生物的关键问题,研究了通过共育来监测从Ge Cyanobacteria Thermosynechocococcus Elongatus bp1到大肠杆菌的工程基因的水平转移。这些实验的结果表明,在液体共同培养的两天后,含有醇产生基因和卡那霉素抗性的含醇和卡那霉素抗性的遗传工程化DNA构建体可以从Ge T.Elongatus BP1水平转移到野生型大肠杆菌。在细菌社区之间的外源基因的快速和容易转移包括抗生素抗性意味着需要继续深化我们对水平基因转移过程的理解,染色体一体化以及进一步的生物安全的研究工作。在合成生物学的时代,用于共享遗传物质的自然微生物方法也将显着影响风险评估,遏制方法和进一步的政策制定。

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