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Engineering the genomes of wild insect populations: Challenges, and opportunities provided by synthetic Medea selfish genetic elements

机译:工程化野生昆虫种群的基因组:合成美狄亚自私遗传元素带来的挑战和机遇

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摘要

Advances in insect transgenesis and our knowledge of insect physiology and genomics are making it possible to create transgenic populations of beneficial or pest insects that express novel traits. There are contexts in which we may want the transgenes responsible for these traits to spread so that all individuals within a wild population carry them, a process known as population replacement. Transgenes of interest are unlikely to confer an overall fitness benefit on those who carry them. Therefore, an essential component of any population replacement strategy is the presence of a drive mechanism that will ensure the spread of linked transgenes. We discuss contexts in which population replacement might be desirable and the requirements a drive system must satisfy to be both effective and safe. We then describe the creation of synthetic Medea elements, the first selfish genetic elements synthesized de novo, with the capability of driving population replacement, in this case in Drosophila. The strategy used to create Drosophila Medea is applicable to a number of other insect species and the Medea system satisfies key requirements for scientific and social acceptance. Finally, we highlight several challenges to implementing population replacement in the wild.\ud\ud
机译:昆虫转基因的进展以及我们对昆虫生理学和基因组学的了解,使得有可能创造出具有新颖性状的有益或害虫昆虫的转基因种群。在某些情况下,我们可能希望负责这些性状的转基因传播,以便野生种群中的所有个体都携带它们,这一过程称为种群替代。感兴趣的转基因不太可能给携带它们的人带来总体健康益处。因此,任何种群替代策略的重要组成部分是驱动机制的存在,该机制将确保链接的转基因的传播。我们讨论了可能需要更换人员的环境,以及驱动系统必须满足才能有效且安全的要求。然后,我们描述合成的美狄亚元素的创建,这是从头合成的第一个自私的遗传元素,具有驱动种群替换的能力,在这种情况下是果蝇。用于创建果蝇美狄亚的策略适用于许多其他昆虫物种,并且美狄亚系统满足了科学和社会接受的关键要求。最后,我们重点介绍了在野外实施人口替代的几个挑战。\ ud \ ud

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