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时间控制、自我调控和方向感是多拷贝质粒稳定性的秘诀。

Timing, self-control and a sense of direction are the secrets of multicopy plasmid stability.

作者信息

Summers D

机构信息

Department of Genetics, Cambridge, UK.

出版信息

Mol Microbiol. 1998 Sep;29(5):1137-45. doi: 10.1046/j.1365-2958.1998.01012.x.

Abstract

Multicopy plasmids of Escherichia coli are distributed randomly at cell division and, as long as copy number remains high, plasmid-free cells arise only rarely. Copy number variation is minimized by plasmid-encoded control circuits, and the limited data available suggest that deviations are corrected efficiently under most circumstances. However, plasmid multimers confuse control circuits, leading to copy number depression. To make matters worse, multimers out-replicate monomers and accumulate clonally within the culture, creating a subpopulation of cells with a significantly increased rate of plasmid loss. Multimers of natural multicopy plasmids, such as ColE1, are resolved to monomers by a site-specific recombination system (Xer-cer) whose activity is limited to intramolecular recombination. Recombination requires the heterodimeric XerCD recombinase plus two accessory proteins (ArgR and PepA), which activate recombination and prevent intermolecular events. Evidence is accumulating that Xer-cer recombination is relatively slow, and there is a risk that cells might divide before multimer resolution is complete. The Rcd transcript encoded within cer may solve this problem by preventing the division of multimer-containing cells. Working in concert, the triumvirate of copy number control, multimer resolution and cell division control achieve an extremely high fidelity of plasmid maintenance.

摘要

大肠杆菌的多拷贝质粒在细胞分裂时随机分布,只要拷贝数保持较高水平,无质粒的细胞就很少出现。拷贝数的变化通过质粒编码的控制回路被最小化,现有的有限数据表明,在大多数情况下偏差能得到有效校正。然而,质粒多聚体会使控制回路混乱,导致拷贝数降低。更糟糕的是,多聚体比单体复制得更快,并在培养物中克隆性积累,形成一个质粒丢失率显著增加的细胞亚群。天然多拷贝质粒(如ColE1)的多聚体通过一个位点特异性重组系统(Xer-cer)分解为单体,该系统的活性仅限于分子内重组。重组需要异源二聚体XerCD重组酶加上两种辅助蛋白(ArgR和PepA),它们激活重组并防止分子间事件发生。越来越多的证据表明,Xer-cer重组相对较慢,存在细胞可能在多聚体分解完成之前就进行分裂的风险。cer内编码的Rcd转录本可能通过阻止含有多聚体的细胞分裂来解决这个问题。拷贝数控制、多聚体分解和细胞分裂控制协同作用,实现了极高的质粒维持保真度。

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