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General principles of single-construct chromosomal gene drive

机译:单构建染色体基因驱动的一般原理

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Gene drive systems are genetic elements capable of spreading into a population even if they confer a fitness cost to their host. We consider a class of drive systems consisting of a chromosomally located, linked cluster of genes, the presence of which renders specific classes of offspring arising from specific parental crosses unviable. Under permissive conditions, a number of these elements are capable of distorting the offspring ratio in their favor. We use a population genetic framework to derive conditions under which these elements spread to fixation in a population or induce a population crash. Many of these systems can be engineered using combinations of toxin and antidote genes, analogous to Medea, which consists of a maternal toxin and zygotic antidote. The majority of toxin-antidote drive systems require a critical frequency to be exceeded before they spread into a population. Of particular interest, a Z-linked Medea construct with a recessive antidote is expected to induce an all-male population crash for release frequencies above 50%. We suggest molecular tools that may be used to build these systems, and discuss their relevance to the control of a variety of insect pest species, including mosquito vectors of diseases such as malaria and dengue fever.
机译:基因驱动系统是能够传播到人群中的遗传元素,即使它们为宿主带来了适度的花费。我们考虑一类由染色体定位的,连锁的基因簇组成的驱动系统,该系统的存在使得特定亲代杂交产生的特定后代不可行。在允许的条件下,这些元素中的许多元素都可以使它们的后代比例失真。我们使用种群遗传框架来推导条件,在这些条件下这些元素传播到种群中的固定位置或引发种群崩溃。可以使用类似于美狄亚的毒素和解毒剂基因的组合来工程改造许多系统,该基因由母体毒素和合子解毒剂组成。大多数毒素解毒剂驱动系统在扩散到人群之前都需要超过临界频率。特别令人感兴趣的是,具有隐性解毒剂的Z链美狄亚构建体有望在释放频率高于50%时引发全男性种群崩溃。我们建议可用于构建这些系统的分子工具,并讨论它们与控制各种害虫种类的相关性,包括控制诸如疟疾和登革热等疾病的蚊媒。

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