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首页> 外文期刊>Nucleic Acids Research >Temporal self-regulation of transposition through host-independent transposase rodlet formation
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Temporal self-regulation of transposition through host-independent transposase rodlet formation

机译:通过宿主独立的转座酶罗缎形成的颞下自调节

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摘要

Transposons are highly abundant in eukaryotic genomes, but their mobilization must be finely tuned to maintain host organism fitness and allow for transposon propagation. Forty percent of the human genome is comprised of transposable element sequences, and the most abundant cut-andpaste transposons are from the hAT superfamily. We found that the hAT transposase TcBuster from Tri-bolium castaneum formed filamentous structures, or rodlets, in human tissue culture cells, after gene transfer to adult mice, and ex vivo in cell-free conditions, indicating that host co-factors or cellular structures were not required for rodlet formation. Timelapsed imaging of GFP-laced rodlets in human cells revealed that they formed quickly in a dynamic process involving fusion and fission. We delayed the availability of the transposon DNA and found that transposition declined after transposase concentrations became high enough for visible transposase rodlets to appear. In combination with earlier findings for maize Ac elements, these results give insight into transposase overproduction inhibition by demonstrating that the appearance of transposase protein structures and the end of active transposition are simultaneous, an effect with implications for genetic engineering and horizontal gene transfer.
机译:转座子在真核基因组中高度丰富,但必须精细调整它们的动员以维持宿主生物体健康并允许转座子繁殖。 40%的人类基因组由可转换元件序列组成,并且最丰富的切口输卵管来自帽子超家族。我们发现,在基因转移到成人小鼠的基因转移后,在人体组织培养细胞中,在人体组织培养细胞中形成丝状结构的帽子转座酶Tcbuster,以及在无细胞条件下,表明宿主共同因素或细胞结构。 rodlet形成不需要。人体细胞中GFP系带罗比的第一次性成像显示它们在涉及融合和裂变的动态过程中快速形成。我们延迟了转座子DNA的可用性,发现转座酶浓度高于足够高的可见转子酶鼠标后,转子下降。结合玉米AC元素的早期发现,这些结果通过证明转子酶蛋白质结构的出现和活性转子结束是同时的,对基因工程和水平基因转移的影响有所了解,对转座酶过贮抑制抑制。

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